Create app_v2_backup.py
Browse files- app_v2_backup.py +1348 -0
app_v2_backup.py
ADDED
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|
| 1 |
+
import marimo
|
| 2 |
+
|
| 3 |
+
__generated_with = "0.11.16"
|
| 4 |
+
app = marimo.App(width="medium")
|
| 5 |
+
|
| 6 |
+
|
| 7 |
+
@app.cell
|
| 8 |
+
def _():
|
| 9 |
+
import marimo as mo
|
| 10 |
+
import os
|
| 11 |
+
return mo, os
|
| 12 |
+
|
| 13 |
+
|
| 14 |
+
@app.cell
|
| 15 |
+
def _():
|
| 16 |
+
def get_markdown_content(file_path):
|
| 17 |
+
with open(file_path, 'r', encoding='utf-8') as file:
|
| 18 |
+
content = file.read()
|
| 19 |
+
return content
|
| 20 |
+
return (get_markdown_content,)
|
| 21 |
+
|
| 22 |
+
|
| 23 |
+
@app.cell
|
| 24 |
+
def _(get_markdown_content, mo):
|
| 25 |
+
intro_text = get_markdown_content('intro_markdown/intro.md')
|
| 26 |
+
intro_marimo = get_markdown_content('intro_markdown/intro_marimo.md')
|
| 27 |
+
intro_notebook = get_markdown_content('intro_markdown/intro_notebook.md')
|
| 28 |
+
intro_comparison = get_markdown_content('intro_markdown/intro_comparison.md')
|
| 29 |
+
|
| 30 |
+
intro = mo.carousel([
|
| 31 |
+
mo.md(f"{intro_text}"),
|
| 32 |
+
mo.md(f"{intro_marimo}"),
|
| 33 |
+
mo.md(f"{intro_notebook}"),
|
| 34 |
+
mo.md(f"{intro_comparison}"),
|
| 35 |
+
])
|
| 36 |
+
|
| 37 |
+
mo.accordion({"## Notebook Introduction":intro})
|
| 38 |
+
return intro, intro_comparison, intro_marimo, intro_notebook, intro_text
|
| 39 |
+
|
| 40 |
+
|
| 41 |
+
@app.cell
|
| 42 |
+
def _(os):
|
| 43 |
+
### Imports
|
| 44 |
+
from typing import (
|
| 45 |
+
Any, Dict, List, Optional, Pattern, Set, Union, Tuple
|
| 46 |
+
)
|
| 47 |
+
from pathlib import Path
|
| 48 |
+
from urllib.request import urlopen
|
| 49 |
+
# from rich.markdown import Markdown as Markd
|
| 50 |
+
from rich.text import Text
|
| 51 |
+
from rich import print
|
| 52 |
+
from tqdm import tqdm
|
| 53 |
+
from enum import Enum
|
| 54 |
+
import pandas as pd
|
| 55 |
+
import tempfile
|
| 56 |
+
import requests
|
| 57 |
+
import getpass
|
| 58 |
+
import urllib3
|
| 59 |
+
import base64
|
| 60 |
+
import time
|
| 61 |
+
import json
|
| 62 |
+
import uuid
|
| 63 |
+
import ssl
|
| 64 |
+
import ast
|
| 65 |
+
import re
|
| 66 |
+
|
| 67 |
+
pd.set_option('display.max_columns', None)
|
| 68 |
+
pd.set_option('display.max_rows', None)
|
| 69 |
+
pd.set_option('display.max_colwidth', None)
|
| 70 |
+
pd.set_option('display.width', None)
|
| 71 |
+
|
| 72 |
+
# Set explicit temporary directory
|
| 73 |
+
os.environ['TMPDIR'] = '/tmp'
|
| 74 |
+
|
| 75 |
+
# Make sure Python's tempfile module also uses this directory
|
| 76 |
+
tempfile.tempdir = '/tmp'
|
| 77 |
+
return (
|
| 78 |
+
Any,
|
| 79 |
+
Dict,
|
| 80 |
+
Enum,
|
| 81 |
+
List,
|
| 82 |
+
Optional,
|
| 83 |
+
Path,
|
| 84 |
+
Pattern,
|
| 85 |
+
Set,
|
| 86 |
+
Text,
|
| 87 |
+
Tuple,
|
| 88 |
+
Union,
|
| 89 |
+
ast,
|
| 90 |
+
base64,
|
| 91 |
+
getpass,
|
| 92 |
+
json,
|
| 93 |
+
pd,
|
| 94 |
+
print,
|
| 95 |
+
re,
|
| 96 |
+
requests,
|
| 97 |
+
ssl,
|
| 98 |
+
tempfile,
|
| 99 |
+
time,
|
| 100 |
+
tqdm,
|
| 101 |
+
urllib3,
|
| 102 |
+
urlopen,
|
| 103 |
+
uuid,
|
| 104 |
+
)
|
| 105 |
+
|
| 106 |
+
|
| 107 |
+
@app.cell
|
| 108 |
+
def _(mo):
|
| 109 |
+
### Credentials for the watsonx.ai SDK client
|
| 110 |
+
|
| 111 |
+
# Endpoints
|
| 112 |
+
wx_platform_url = "https://api.dataplatform.cloud.ibm.com"
|
| 113 |
+
regions = {
|
| 114 |
+
"US": "https://us-south.ml.cloud.ibm.com",
|
| 115 |
+
"EU": "https://eu-de.ml.cloud.ibm.com",
|
| 116 |
+
"GB": "https://eu-gb.ml.cloud.ibm.com",
|
| 117 |
+
"JP": "https://jp-tok.ml.cloud.ibm.com",
|
| 118 |
+
"AU": "https://au-syd.ml.cloud.ibm.com",
|
| 119 |
+
"CA": "https://ca-tor.ml.cloud.ibm.com"
|
| 120 |
+
}
|
| 121 |
+
|
| 122 |
+
# Create a form with multiple elements
|
| 123 |
+
client_instantiation_form = (
|
| 124 |
+
mo.md('''
|
| 125 |
+
###**watsonx.ai credentials:**
|
| 126 |
+
|
| 127 |
+
{wx_region}
|
| 128 |
+
|
| 129 |
+
{wx_api_key}
|
| 130 |
+
|
| 131 |
+
{space_id}
|
| 132 |
+
''').style(max_height="300px", overflow="auto", border_color="blue")
|
| 133 |
+
.batch(
|
| 134 |
+
wx_region = mo.ui.dropdown(regions, label="Select your watsonx.ai region:", value="US", searchable=True),
|
| 135 |
+
wx_api_key = mo.ui.text(placeholder="Add your IBM Cloud api-key...", label="IBM Cloud Api-key:", kind="password"),
|
| 136 |
+
# project_id = mo.ui.text(placeholder="Add your watsonx.ai project_id...", label="Project_ID:", kind="text"),
|
| 137 |
+
space_id = mo.ui.text(placeholder="Add your watsonx.ai space_id...", label="Space_ID:", kind="text")
|
| 138 |
+
,)
|
| 139 |
+
.form(show_clear_button=True, bordered=False)
|
| 140 |
+
)
|
| 141 |
+
|
| 142 |
+
|
| 143 |
+
# client_instantiation_form
|
| 144 |
+
return client_instantiation_form, regions, wx_platform_url
|
| 145 |
+
|
| 146 |
+
|
| 147 |
+
@app.cell
|
| 148 |
+
def _(client_instantiation_form, mo):
|
| 149 |
+
from ibm_watsonx_ai import APIClient, Credentials
|
| 150 |
+
|
| 151 |
+
def setup_task_credentials(deployment_client):
|
| 152 |
+
# Get existing task credentials
|
| 153 |
+
existing_credentials = deployment_client.task_credentials.get_details()
|
| 154 |
+
|
| 155 |
+
# Delete existing credentials if any
|
| 156 |
+
if "resources" in existing_credentials and existing_credentials["resources"]:
|
| 157 |
+
for cred in existing_credentials["resources"]:
|
| 158 |
+
cred_id = deployment_client.task_credentials.get_id(cred)
|
| 159 |
+
deployment_client.task_credentials.delete(cred_id)
|
| 160 |
+
|
| 161 |
+
# Store new credentials
|
| 162 |
+
return deployment_client.task_credentials.store()
|
| 163 |
+
|
| 164 |
+
if client_instantiation_form.value:
|
| 165 |
+
### Instantiate the watsonx.ai client
|
| 166 |
+
wx_credentials = Credentials(
|
| 167 |
+
url=client_instantiation_form.value["wx_region"],
|
| 168 |
+
api_key=client_instantiation_form.value["wx_api_key"]
|
| 169 |
+
)
|
| 170 |
+
|
| 171 |
+
# project_client = APIClient(credentials=wx_credentials, project_id=client_instantiation_form.value["project_id"])
|
| 172 |
+
deployment_client = APIClient(credentials=wx_credentials, space_id=client_instantiation_form.value["space_id"])
|
| 173 |
+
|
| 174 |
+
task_credentials_details = setup_task_credentials(deployment_client)
|
| 175 |
+
else:
|
| 176 |
+
# project_client = None
|
| 177 |
+
deployment_client = None
|
| 178 |
+
task_credentials_details = None
|
| 179 |
+
|
| 180 |
+
template_variant = mo.ui.dropdown(["Base","Stream Files to IBM COS [Example]"], label="Code Template:", value="Base")
|
| 181 |
+
|
| 182 |
+
if deployment_client is not None:
|
| 183 |
+
client_callout_kind = "success"
|
| 184 |
+
else:
|
| 185 |
+
client_callout_kind = "neutral"
|
| 186 |
+
|
| 187 |
+
client_callout = mo.callout(template_variant, kind=client_callout_kind)
|
| 188 |
+
|
| 189 |
+
# client_callout
|
| 190 |
+
return (
|
| 191 |
+
APIClient,
|
| 192 |
+
Credentials,
|
| 193 |
+
client_callout,
|
| 194 |
+
client_callout_kind,
|
| 195 |
+
deployment_client,
|
| 196 |
+
setup_task_credentials,
|
| 197 |
+
task_credentials_details,
|
| 198 |
+
template_variant,
|
| 199 |
+
wx_credentials,
|
| 200 |
+
)
|
| 201 |
+
|
| 202 |
+
|
| 203 |
+
@app.cell
|
| 204 |
+
def _(
|
| 205 |
+
client_callout,
|
| 206 |
+
client_instantiation_form,
|
| 207 |
+
deploy_fnc,
|
| 208 |
+
deployment_definition,
|
| 209 |
+
fm,
|
| 210 |
+
function_editor,
|
| 211 |
+
hw_selection_table,
|
| 212 |
+
mo,
|
| 213 |
+
purge_tabs,
|
| 214 |
+
sc_m,
|
| 215 |
+
schema_editors,
|
| 216 |
+
selection_table,
|
| 217 |
+
upload_func,
|
| 218 |
+
):
|
| 219 |
+
s1 = mo.md(f'''
|
| 220 |
+
###**Instantiate your watsonx.ai client:**
|
| 221 |
+
|
| 222 |
+
1. Select a region from the dropdown menu
|
| 223 |
+
|
| 224 |
+
2. Provide an IBM Cloud Apikey and watsonx.ai deployment space id
|
| 225 |
+
|
| 226 |
+
3. Once you submit, the area with the code template will turn green if successful
|
| 227 |
+
|
| 228 |
+
4. Select a base (provide baseline format) or example code function template
|
| 229 |
+
|
| 230 |
+
---
|
| 231 |
+
|
| 232 |
+
{client_instantiation_form}
|
| 233 |
+
|
| 234 |
+
---
|
| 235 |
+
|
| 236 |
+
{client_callout}
|
| 237 |
+
|
| 238 |
+
''')
|
| 239 |
+
|
| 240 |
+
sc_tabs = mo.ui.tabs(
|
| 241 |
+
{
|
| 242 |
+
"Schema Option Selection": sc_m,
|
| 243 |
+
"Schema Definition": mo.md(f"""
|
| 244 |
+
####**Edit the schema definitions you selected in the previous tab.**<br>
|
| 245 |
+
{schema_editors}"""),
|
| 246 |
+
}
|
| 247 |
+
)
|
| 248 |
+
|
| 249 |
+
s2 = mo.md(f'''###**Create your function from the template:**
|
| 250 |
+
|
| 251 |
+
1. Use the code editor window to create a function to deploy
|
| 252 |
+
<br>
|
| 253 |
+
The function must:
|
| 254 |
+
<br>
|
| 255 |
+
--- Include a payload and score element
|
| 256 |
+
<br>
|
| 257 |
+
--- Have the same function name in both the score = <name>() segment and the Function Name input field below
|
| 258 |
+
<br>
|
| 259 |
+
--- Additional details can be found here -> [watsonx.ai - Writing deployable Python functions
|
| 260 |
+
](https://dataplatform.cloud.ibm.com/docs/content/wsj/analyze-data/ml-deploy-py-function-write.html?utm_medium=Exinfluencer&utm_source=ibm_developer&utm_content=in_content_link&utm_term=10006555&utm_id=blogs_awb-tekton-optimizations-for-kubeflow-pipelines-2-0&context=wx&audience=wdp)
|
| 261 |
+
|
| 262 |
+
3. Click submit, then proceed to select whether you wish to add:
|
| 263 |
+
<br>
|
| 264 |
+
--- An input schema (describing the format of the variables the function takes) **[Optional]**
|
| 265 |
+
<br>
|
| 266 |
+
--- An output schema (describing the format of the output results the function returns) **[Optional]**
|
| 267 |
+
<br>
|
| 268 |
+
--- An sample input example (showing an example of a mapping of the input and output schema to actual values.) **[Optional]**
|
| 269 |
+
|
| 270 |
+
4. Fill in the function name field **(must be exactly the same as in the function editor)**
|
| 271 |
+
|
| 272 |
+
5. Add a description and metadata tags **[Optional]**
|
| 273 |
+
|
| 274 |
+
---
|
| 275 |
+
|
| 276 |
+
{function_editor}
|
| 277 |
+
|
| 278 |
+
---
|
| 279 |
+
|
| 280 |
+
{sc_tabs}
|
| 281 |
+
|
| 282 |
+
---
|
| 283 |
+
|
| 284 |
+
{fm}
|
| 285 |
+
|
| 286 |
+
''')
|
| 287 |
+
|
| 288 |
+
s3 = mo.md(f'''
|
| 289 |
+
###**Review and Upload your function**
|
| 290 |
+
|
| 291 |
+
1. Review the function metadata specs JSON
|
| 292 |
+
|
| 293 |
+
2. Select a software specification if necessary (default for python functions is pre-selected), this is the runtime environment of python that your function will run in. Environments on watsonx.ai come pre-packaged with many different libraries, if necessary install new ones by adding them into the function as a `subprocess.check_output('pip install <package_name>', shell=True)` command.
|
| 294 |
+
|
| 295 |
+
3. Once your are satisfied, click the upload function button and wait for the response.
|
| 296 |
+
|
| 297 |
+
> If you see no table of software specs, you haven't activated your watsonx.ai client.
|
| 298 |
+
|
| 299 |
+
---
|
| 300 |
+
|
| 301 |
+
{selection_table}
|
| 302 |
+
|
| 303 |
+
---
|
| 304 |
+
|
| 305 |
+
{upload_func}
|
| 306 |
+
|
| 307 |
+
''')
|
| 308 |
+
|
| 309 |
+
s4 = mo.md(f'''
|
| 310 |
+
###**Deploy your function:**
|
| 311 |
+
|
| 312 |
+
1. Select a hardware specification (vCPUs/GB) that you want your function deployed on
|
| 313 |
+
<br>
|
| 314 |
+
--- XXS and XS cost the same (0.5 CUH per hour, so XS is the better option
|
| 315 |
+
<br>
|
| 316 |
+
--- Select larger instances for more resource intensive tasks or runnable jobs
|
| 317 |
+
|
| 318 |
+
2. Select the type of deployment:
|
| 319 |
+
<br>
|
| 320 |
+
--- Function (Online) for always-on endpoints - Always available and low latency, but consume resources continuously for every hour they are deployed.
|
| 321 |
+
<br>
|
| 322 |
+
--- Batch (Batch) for runnable jobs - Only consume resources during job runs, but aren't as flexible to deploy.
|
| 323 |
+
|
| 324 |
+
3. If you've selected Function, pick a completely unique (globally, not just your account) deployment serving name that will be in the endpoint url.
|
| 325 |
+
|
| 326 |
+
4. Once your are satisfied, click the deploy function button and wait for the response.
|
| 327 |
+
|
| 328 |
+
---
|
| 329 |
+
|
| 330 |
+
{hw_selection_table}
|
| 331 |
+
|
| 332 |
+
---
|
| 333 |
+
|
| 334 |
+
{deployment_definition}
|
| 335 |
+
|
| 336 |
+
---
|
| 337 |
+
|
| 338 |
+
{deploy_fnc}
|
| 339 |
+
|
| 340 |
+
''')
|
| 341 |
+
|
| 342 |
+
s5 = mo.md(f'''
|
| 343 |
+
###**Helper Purge Functions:**
|
| 344 |
+
|
| 345 |
+
These functions help you retrieve and mass delete ***(WARNING: purges all at once)*** deployments, data assets or repository assets (functions, models, etc.) that you have in the deployment space. This is meant to support fast cleanup.
|
| 346 |
+
|
| 347 |
+
Select the tab based on what you want to delete, then click each of the buttons one by one after the previous gives a response.
|
| 348 |
+
|
| 349 |
+
---
|
| 350 |
+
|
| 351 |
+
{purge_tabs}
|
| 352 |
+
|
| 353 |
+
''')
|
| 354 |
+
|
| 355 |
+
sections = mo.accordion(
|
| 356 |
+
{
|
| 357 |
+
"Section 1: **watsonx.ai Credentials**": s1,
|
| 358 |
+
"Section 2: **Function Creation**": s2,
|
| 359 |
+
"Section 3: **Function Upload**": s3,
|
| 360 |
+
"Section 4: **Function Deployment**": s4,
|
| 361 |
+
"Section 5: **Helper Functions**": s5,
|
| 362 |
+
},
|
| 363 |
+
multiple=True
|
| 364 |
+
)
|
| 365 |
+
|
| 366 |
+
sections
|
| 367 |
+
return s1, s2, s3, s4, s5, sc_tabs, sections
|
| 368 |
+
|
| 369 |
+
|
| 370 |
+
@app.cell
|
| 371 |
+
def _(mo, template_variant):
|
| 372 |
+
# Template for WatsonX.ai deployable function
|
| 373 |
+
if template_variant.value == "Stream Files to IBM COS [Example]":
|
| 374 |
+
with open("stream_files_to_cos.py", "r") as file:
|
| 375 |
+
template = file.read()
|
| 376 |
+
else:
|
| 377 |
+
template = '''def your_function_name():
|
| 378 |
+
|
| 379 |
+
import subprocess
|
| 380 |
+
subprocess.check_output('pip install gensim', shell=True)
|
| 381 |
+
import gensim
|
| 382 |
+
|
| 383 |
+
def score(input_data):
|
| 384 |
+
message_from_input_payload = payload.get("input_data")[0].get("values")[0][0]
|
| 385 |
+
response_message = "Received message - {0}".format(message_from_input_payload)
|
| 386 |
+
|
| 387 |
+
# Score using the pre-defined model
|
| 388 |
+
score_response = {
|
| 389 |
+
'predictions': [{'fields': ['Response_message_field', 'installed_lib_version'],
|
| 390 |
+
'values': [[response_message, gensim.__version__]]
|
| 391 |
+
}]
|
| 392 |
+
}
|
| 393 |
+
return score_response
|
| 394 |
+
|
| 395 |
+
return score
|
| 396 |
+
|
| 397 |
+
score = your_function_name()
|
| 398 |
+
'''
|
| 399 |
+
|
| 400 |
+
function_editor = (
|
| 401 |
+
mo.md('''
|
| 402 |
+
#### **Create your function by editing the template:**
|
| 403 |
+
|
| 404 |
+
{editor}
|
| 405 |
+
|
| 406 |
+
''')
|
| 407 |
+
.batch(
|
| 408 |
+
editor = mo.ui.code_editor(value=template, language="python", min_height=50)
|
| 409 |
+
)
|
| 410 |
+
.form(show_clear_button=True, bordered=False)
|
| 411 |
+
)
|
| 412 |
+
|
| 413 |
+
# function_editor
|
| 414 |
+
return file, function_editor, template
|
| 415 |
+
|
| 416 |
+
|
| 417 |
+
@app.cell
|
| 418 |
+
def _(function_editor, mo, os):
|
| 419 |
+
if function_editor.value:
|
| 420 |
+
# Get the edited code from the function editor
|
| 421 |
+
code = function_editor.value['editor']
|
| 422 |
+
# Create a namespace to execute the code in
|
| 423 |
+
namespace = {}
|
| 424 |
+
# Execute the code
|
| 425 |
+
exec(code, namespace)
|
| 426 |
+
|
| 427 |
+
# Find the first function defined in the namespace
|
| 428 |
+
function_name = None
|
| 429 |
+
for name, obj in namespace.items():
|
| 430 |
+
if callable(obj) and name != "__builtins__":
|
| 431 |
+
function_name = name
|
| 432 |
+
break
|
| 433 |
+
|
| 434 |
+
if function_name:
|
| 435 |
+
# Instantiate the deployable function
|
| 436 |
+
deployable_function = namespace[function_name]
|
| 437 |
+
# Now deployable_function contains the score function
|
| 438 |
+
mo.md(f"Created deployable function from '{function_name}'")
|
| 439 |
+
# Create the directory if it doesn't exist
|
| 440 |
+
save_dir = "/tmp/notebook_functions"
|
| 441 |
+
os.makedirs(save_dir, exist_ok=True)
|
| 442 |
+
# Save the function code to a file
|
| 443 |
+
file_path = os.path.join(save_dir, f"{function_name}.py")
|
| 444 |
+
with open(file_path, "w") as f:
|
| 445 |
+
f.write(code)
|
| 446 |
+
else:
|
| 447 |
+
mo.md("No function found in the editor code")
|
| 448 |
+
return (
|
| 449 |
+
code,
|
| 450 |
+
deployable_function,
|
| 451 |
+
f,
|
| 452 |
+
file_path,
|
| 453 |
+
function_name,
|
| 454 |
+
name,
|
| 455 |
+
namespace,
|
| 456 |
+
obj,
|
| 457 |
+
save_dir,
|
| 458 |
+
)
|
| 459 |
+
|
| 460 |
+
|
| 461 |
+
@app.cell
|
| 462 |
+
def _(deployment_client, mo, pd):
|
| 463 |
+
if deployment_client:
|
| 464 |
+
supported_specs = deployment_client.software_specifications.list()[
|
| 465 |
+
deployment_client.software_specifications.list()['STATE'] == 'supported'
|
| 466 |
+
]
|
| 467 |
+
|
| 468 |
+
# Reset the index to start from 0
|
| 469 |
+
supported_specs = supported_specs.reset_index(drop=True)
|
| 470 |
+
|
| 471 |
+
# Create a mapping dictionary for framework names based on software specifications
|
| 472 |
+
framework_mapping = {
|
| 473 |
+
"tensorflow_rt24.1-py3.11": "TensorFlow",
|
| 474 |
+
"pytorch-onnx_rt24.1-py3.11": "PyTorch",
|
| 475 |
+
"onnxruntime_opset_19": "ONNX or ONNXRuntime",
|
| 476 |
+
"runtime-24.1-py3.11": "AI Services/Python Functions/Python Scripts",
|
| 477 |
+
"autoai-ts_rt24.1-py3.11": "AutoAI",
|
| 478 |
+
"autoai-kb_rt24.1-py3.11": "AutoAI",
|
| 479 |
+
"runtime-24.1-py3.11-cuda": "CUDA-enabled (GPU) Python Runtime",
|
| 480 |
+
"runtime-24.1-r4.3": "R Runtime 4.3",
|
| 481 |
+
"spark-mllib_3.4": "Apache Spark 3.4",
|
| 482 |
+
"autoai-rag_rt24.1-py3.11": "AutoAI RAG"
|
| 483 |
+
}
|
| 484 |
+
|
| 485 |
+
# Define the preferred order for items to appear at the top
|
| 486 |
+
preferred_order = [
|
| 487 |
+
"runtime-24.1-py3.11",
|
| 488 |
+
"runtime-24.1-py3.11-cuda",
|
| 489 |
+
"runtime-24.1-r4.3",
|
| 490 |
+
"ai-service-v5-software-specification",
|
| 491 |
+
"autoai-rag_rt24.1-py3.11",
|
| 492 |
+
"autoai-ts_rt24.1-py3.11",
|
| 493 |
+
"autoai-kb_rt24.1-py3.11",
|
| 494 |
+
"tensorflow_rt24.1-py3.11",
|
| 495 |
+
"pytorch-onnx_rt24.1-py3.11",
|
| 496 |
+
"onnxruntime_opset_19",
|
| 497 |
+
"spark-mllib_3.4",
|
| 498 |
+
]
|
| 499 |
+
|
| 500 |
+
# Create a new column for sorting
|
| 501 |
+
supported_specs['SORT_ORDER'] = supported_specs['NAME'].apply(
|
| 502 |
+
lambda x: preferred_order.index(x) if x in preferred_order else len(preferred_order)
|
| 503 |
+
)
|
| 504 |
+
|
| 505 |
+
# Sort the DataFrame by the new column
|
| 506 |
+
supported_specs = supported_specs.sort_values('SORT_ORDER').reset_index(drop=True)
|
| 507 |
+
|
| 508 |
+
# Drop the sorting column as it's no longer needed
|
| 509 |
+
supported_specs = supported_specs.drop(columns=['SORT_ORDER'])
|
| 510 |
+
|
| 511 |
+
# Drop the REPLACEMENT column if it exists and add NOTES column
|
| 512 |
+
if 'REPLACEMENT' in supported_specs.columns:
|
| 513 |
+
supported_specs = supported_specs.drop(columns=['REPLACEMENT'])
|
| 514 |
+
|
| 515 |
+
# Add NOTES column with framework information
|
| 516 |
+
supported_specs['NOTES'] = supported_specs['NAME'].map(framework_mapping).fillna("Other")
|
| 517 |
+
|
| 518 |
+
# Create a table with single-row selection
|
| 519 |
+
selection_table = mo.ui.table(
|
| 520 |
+
supported_specs,
|
| 521 |
+
selection="single", # Only allow selecting one row
|
| 522 |
+
label="#### **Select a supported software_spec runtime for your function asset** (For Python Functions select - *'runtime-24.1-py3.11'* ):",
|
| 523 |
+
initial_selection=[0], # Now selecting the first row, which should be runtime-24.1-py3.11
|
| 524 |
+
page_size=6
|
| 525 |
+
)
|
| 526 |
+
else:
|
| 527 |
+
sel_df = pd.DataFrame(
|
| 528 |
+
data=[["ID", "Activate deployment_client."]],
|
| 529 |
+
columns=["ID", "VALUE"]
|
| 530 |
+
)
|
| 531 |
+
|
| 532 |
+
selection_table = mo.ui.table(
|
| 533 |
+
sel_df,
|
| 534 |
+
selection="single", # Only allow selecting one row
|
| 535 |
+
label="You haven't activated the Deployment_Client",
|
| 536 |
+
initial_selection=[0]
|
| 537 |
+
)
|
| 538 |
+
|
| 539 |
+
# # Display the table
|
| 540 |
+
# mo.md(f"""---
|
| 541 |
+
# <br>
|
| 542 |
+
# <br>
|
| 543 |
+
# {selection_table}
|
| 544 |
+
# <br>
|
| 545 |
+
# <br>
|
| 546 |
+
# ---
|
| 547 |
+
# <br>
|
| 548 |
+
# <br>
|
| 549 |
+
# """)
|
| 550 |
+
return (
|
| 551 |
+
framework_mapping,
|
| 552 |
+
preferred_order,
|
| 553 |
+
sel_df,
|
| 554 |
+
selection_table,
|
| 555 |
+
supported_specs,
|
| 556 |
+
)
|
| 557 |
+
|
| 558 |
+
|
| 559 |
+
@app.cell
|
| 560 |
+
def _(mo):
|
| 561 |
+
input_schema_checkbox = mo.ui.checkbox(label="Add input schema (optional)")
|
| 562 |
+
output_schema_checkbox = mo.ui.checkbox(label="Add output schema (optional)")
|
| 563 |
+
sample_input_checkbox = mo.ui.checkbox(label="Add sample input example (optional)")
|
| 564 |
+
return input_schema_checkbox, output_schema_checkbox, sample_input_checkbox
|
| 565 |
+
|
| 566 |
+
|
| 567 |
+
@app.cell
|
| 568 |
+
def _(
|
| 569 |
+
input_schema_checkbox,
|
| 570 |
+
mo,
|
| 571 |
+
output_schema_checkbox,
|
| 572 |
+
sample_input_checkbox,
|
| 573 |
+
selection_table,
|
| 574 |
+
template_variant,
|
| 575 |
+
):
|
| 576 |
+
if selection_table.value['ID'].iloc[0]:
|
| 577 |
+
# Create the input fields
|
| 578 |
+
if template_variant.value == "Stream Files to IBM COS [Example]":
|
| 579 |
+
fnc_nm = "stream_file_to_cos"
|
| 580 |
+
else:
|
| 581 |
+
fnc_nm = "your_function_name"
|
| 582 |
+
|
| 583 |
+
uploaded_function_name = mo.ui.text(placeholder="<Must be the same as the name in editor>", label="Function Name:", kind="text", value=f"{fnc_nm}", full_width=False)
|
| 584 |
+
tags_editor = mo.ui.array(
|
| 585 |
+
[mo.ui.text(placeholder="Metadata Tags..."), mo.ui.text(), mo.ui.text()],
|
| 586 |
+
label="Optional Metadata Tags"
|
| 587 |
+
)
|
| 588 |
+
software_spec = selection_table.value['ID'].iloc[0]
|
| 589 |
+
|
| 590 |
+
description_input = mo.ui.text_area(
|
| 591 |
+
placeholder="Write a description for your function...)",
|
| 592 |
+
label="Description",
|
| 593 |
+
max_length=256,
|
| 594 |
+
rows=5,
|
| 595 |
+
full_width=True
|
| 596 |
+
)
|
| 597 |
+
|
| 598 |
+
|
| 599 |
+
func_metadata=mo.hstack([
|
| 600 |
+
description_input,
|
| 601 |
+
mo.hstack([
|
| 602 |
+
uploaded_function_name,
|
| 603 |
+
tags_editor,
|
| 604 |
+
], justify="start", gap=1, align="start", wrap=True)
|
| 605 |
+
],
|
| 606 |
+
widths=[0.6,0.4],
|
| 607 |
+
gap=2.75
|
| 608 |
+
)
|
| 609 |
+
|
| 610 |
+
schema_metadata=mo.hstack([
|
| 611 |
+
input_schema_checkbox,
|
| 612 |
+
output_schema_checkbox,
|
| 613 |
+
sample_input_checkbox
|
| 614 |
+
],
|
| 615 |
+
justify="center", gap=1, align="center", wrap=True
|
| 616 |
+
)
|
| 617 |
+
|
| 618 |
+
# Display the metadata inputs
|
| 619 |
+
# mo.vstack([
|
| 620 |
+
# func_metadata,
|
| 621 |
+
# mo.md("**Make sure to click the checkboxes before filling in descriptions and tags or they will reset.**"),
|
| 622 |
+
# schema_metadata
|
| 623 |
+
# ],
|
| 624 |
+
# align="center",
|
| 625 |
+
# gap=2
|
| 626 |
+
# )
|
| 627 |
+
fm = mo.vstack([
|
| 628 |
+
func_metadata,
|
| 629 |
+
],
|
| 630 |
+
align="center",
|
| 631 |
+
gap=2
|
| 632 |
+
)
|
| 633 |
+
sc_m = mo.vstack([
|
| 634 |
+
schema_metadata,
|
| 635 |
+
mo.md("**Make sure to select the checkbox options before filling in descriptions and tags or they will reset.**")
|
| 636 |
+
],
|
| 637 |
+
align="center",
|
| 638 |
+
gap=2
|
| 639 |
+
)
|
| 640 |
+
return (
|
| 641 |
+
description_input,
|
| 642 |
+
fm,
|
| 643 |
+
fnc_nm,
|
| 644 |
+
func_metadata,
|
| 645 |
+
sc_m,
|
| 646 |
+
schema_metadata,
|
| 647 |
+
software_spec,
|
| 648 |
+
tags_editor,
|
| 649 |
+
uploaded_function_name,
|
| 650 |
+
)
|
| 651 |
+
|
| 652 |
+
|
| 653 |
+
@app.cell
|
| 654 |
+
def _(json, mo, template_variant):
|
| 655 |
+
if template_variant.value == "Stream Files to IBM COS [Example]":
|
| 656 |
+
from cos_stream_schema_examples import input_schema, output_schema, sample_input
|
| 657 |
+
else:
|
| 658 |
+
input_schema = [
|
| 659 |
+
{
|
| 660 |
+
'id': '1',
|
| 661 |
+
'type': 'struct',
|
| 662 |
+
'fields': [
|
| 663 |
+
{
|
| 664 |
+
'name': '<variable name 1>',
|
| 665 |
+
'type': 'string',
|
| 666 |
+
'nullable': False,
|
| 667 |
+
'metadata': {}
|
| 668 |
+
},
|
| 669 |
+
{
|
| 670 |
+
'name': '<variable name 2>',
|
| 671 |
+
'type': 'string',
|
| 672 |
+
'nullable': False,
|
| 673 |
+
'metadata': {}
|
| 674 |
+
}
|
| 675 |
+
]
|
| 676 |
+
}
|
| 677 |
+
]
|
| 678 |
+
|
| 679 |
+
output_schema = [
|
| 680 |
+
{
|
| 681 |
+
'id': '1',
|
| 682 |
+
'type': 'struct',
|
| 683 |
+
'fields': [
|
| 684 |
+
{
|
| 685 |
+
'name': '<output return name>',
|
| 686 |
+
'type': 'string',
|
| 687 |
+
'nullable': False,
|
| 688 |
+
'metadata': {}
|
| 689 |
+
}
|
| 690 |
+
]
|
| 691 |
+
}
|
| 692 |
+
]
|
| 693 |
+
|
| 694 |
+
sample_input = {
|
| 695 |
+
'input_data': [
|
| 696 |
+
{
|
| 697 |
+
'fields': ['<variable name 1>', '<variable name 2>'],
|
| 698 |
+
'values': [
|
| 699 |
+
['<sample input value for variable 1>', '<sample input value for variable 2>']
|
| 700 |
+
]
|
| 701 |
+
}
|
| 702 |
+
]
|
| 703 |
+
}
|
| 704 |
+
|
| 705 |
+
|
| 706 |
+
input_schema_editor = mo.ui.code_editor(value=json.dumps(input_schema, indent=4), language="python", min_height=25)
|
| 707 |
+
output_schema_editor = mo.ui.code_editor(value=json.dumps(output_schema, indent=4), language="python", min_height=25)
|
| 708 |
+
sample_input_editor = mo.ui.code_editor(value=json.dumps(sample_input, indent=4), language="python", min_height=25)
|
| 709 |
+
|
| 710 |
+
schema_editors = mo.accordion(
|
| 711 |
+
{
|
| 712 |
+
"""**Input Schema Metadata Editor**""": input_schema_editor,
|
| 713 |
+
"""**Output Schema Metadata Editor**""": output_schema_editor,
|
| 714 |
+
"""**Sample Input Metadata Editor**""": sample_input_editor
|
| 715 |
+
}, multiple=True
|
| 716 |
+
)
|
| 717 |
+
|
| 718 |
+
# schema_editors
|
| 719 |
+
return (
|
| 720 |
+
input_schema,
|
| 721 |
+
input_schema_editor,
|
| 722 |
+
output_schema,
|
| 723 |
+
output_schema_editor,
|
| 724 |
+
sample_input,
|
| 725 |
+
sample_input_editor,
|
| 726 |
+
schema_editors,
|
| 727 |
+
)
|
| 728 |
+
|
| 729 |
+
|
| 730 |
+
@app.cell
|
| 731 |
+
def _(
|
| 732 |
+
ast,
|
| 733 |
+
deployment_client,
|
| 734 |
+
description_input,
|
| 735 |
+
function_editor,
|
| 736 |
+
input_schema_checkbox,
|
| 737 |
+
input_schema_editor,
|
| 738 |
+
json,
|
| 739 |
+
mo,
|
| 740 |
+
os,
|
| 741 |
+
output_schema_checkbox,
|
| 742 |
+
output_schema_editor,
|
| 743 |
+
sample_input_checkbox,
|
| 744 |
+
sample_input_editor,
|
| 745 |
+
selection_table,
|
| 746 |
+
software_spec,
|
| 747 |
+
tags_editor,
|
| 748 |
+
uploaded_function_name,
|
| 749 |
+
):
|
| 750 |
+
get_upload_status, set_upload_status = mo.state("No uploads yet")
|
| 751 |
+
|
| 752 |
+
function_meta = {}
|
| 753 |
+
|
| 754 |
+
if selection_table.value['ID'].iloc[0] and deployment_client is not None:
|
| 755 |
+
# Start with the base required fields
|
| 756 |
+
function_meta = {
|
| 757 |
+
deployment_client.repository.FunctionMetaNames.NAME: f"{uploaded_function_name.value}" or "your_function_name",
|
| 758 |
+
deployment_client.repository.FunctionMetaNames.SOFTWARE_SPEC_ID: software_spec or "45f12dfe-aa78-5b8d-9f38-0ee223c47309"
|
| 759 |
+
}
|
| 760 |
+
|
| 761 |
+
# Add optional fields if they exist
|
| 762 |
+
if tags_editor.value:
|
| 763 |
+
# Filter out empty strings from the tags list
|
| 764 |
+
filtered_tags = [tag for tag in tags_editor.value if tag and tag.strip()]
|
| 765 |
+
if filtered_tags: # Only add if there are non-empty tags
|
| 766 |
+
function_meta[deployment_client.repository.FunctionMetaNames.TAGS] = filtered_tags
|
| 767 |
+
|
| 768 |
+
|
| 769 |
+
if description_input.value:
|
| 770 |
+
function_meta[deployment_client.repository.FunctionMetaNames.DESCRIPTION] = description_input.value
|
| 771 |
+
|
| 772 |
+
# Add input schema if checkbox is checked
|
| 773 |
+
if input_schema_checkbox.value:
|
| 774 |
+
try:
|
| 775 |
+
function_meta[deployment_client.repository.FunctionMetaNames.INPUT_DATA_SCHEMAS] = json.loads(input_schema_editor.value)
|
| 776 |
+
except json.JSONDecodeError:
|
| 777 |
+
# If JSON parsing fails, try Python literal evaluation as fallback
|
| 778 |
+
function_meta[deployment_client.repository.FunctionMetaNames.INPUT_DATA_SCHEMAS] = ast.literal_eval(input_schema_editor.value)
|
| 779 |
+
|
| 780 |
+
# Add output schema if checkbox is checked
|
| 781 |
+
if output_schema_checkbox.value:
|
| 782 |
+
try:
|
| 783 |
+
function_meta[deployment_client.repository.FunctionMetaNames.OUTPUT_DATA_SCHEMAS] = json.loads(output_schema_editor.value)
|
| 784 |
+
except json.JSONDecodeError:
|
| 785 |
+
# If JSON parsing fails, try Python literal evaluation as fallback
|
| 786 |
+
function_meta[deployment_client.repository.FunctionMetaNames.OUTPUT_DATA_SCHEMAS] = ast.literal_eval(output_schema_editor.value)
|
| 787 |
+
|
| 788 |
+
# Add sample input if checkbox is checked
|
| 789 |
+
if sample_input_checkbox.value:
|
| 790 |
+
try:
|
| 791 |
+
function_meta[deployment_client.repository.FunctionMetaNames.SAMPLE_SCORING_INPUT] = json.loads(sample_input_editor.value)
|
| 792 |
+
except json.JSONDecodeError:
|
| 793 |
+
# If JSON parsing fails, try Python literal evaluation as fallback
|
| 794 |
+
function_meta[deployment_client.repository.FunctionMetaNames.SAMPLE_SCORING_INPUT] = ast.literal_eval(sample_input_editor.value)
|
| 795 |
+
|
| 796 |
+
def upload_function(function_meta, use_function_object=True):
|
| 797 |
+
"""
|
| 798 |
+
Uploads a Python function to watsonx.ai as a deployable asset.
|
| 799 |
+
Parameters:
|
| 800 |
+
function_meta (dict): Metadata for the function
|
| 801 |
+
use_function_object (bool): Whether to use function object (True) or file path (False)
|
| 802 |
+
Returns:
|
| 803 |
+
dict: Details of the uploaded function
|
| 804 |
+
"""
|
| 805 |
+
# Store the original working directory
|
| 806 |
+
original_dir = os.getcwd()
|
| 807 |
+
|
| 808 |
+
try:
|
| 809 |
+
# Create temp file from the code in the editor
|
| 810 |
+
code_to_deploy = function_editor.value['editor']
|
| 811 |
+
# This function is defined elsewhere in the notebook
|
| 812 |
+
func_name = uploaded_function_name.value or "your_function_name"
|
| 813 |
+
# Ensure function_meta has the correct function name
|
| 814 |
+
function_meta[deployment_client.repository.FunctionMetaNames.NAME] = func_name
|
| 815 |
+
# Save the file locally first
|
| 816 |
+
save_dir = "/tmp/notebook_functions"
|
| 817 |
+
os.makedirs(save_dir, exist_ok=True)
|
| 818 |
+
file_path = f"{save_dir}/{func_name}.py"
|
| 819 |
+
with open(file_path, "w", encoding="utf-8") as f:
|
| 820 |
+
f.write(code_to_deploy)
|
| 821 |
+
|
| 822 |
+
if use_function_object:
|
| 823 |
+
# Import the function from the file
|
| 824 |
+
import sys
|
| 825 |
+
import importlib.util
|
| 826 |
+
# Add the directory to Python's path
|
| 827 |
+
sys.path.append(save_dir)
|
| 828 |
+
# Import the module
|
| 829 |
+
spec = importlib.util.spec_from_file_location(func_name, file_path)
|
| 830 |
+
module = importlib.util.module_from_spec(spec)
|
| 831 |
+
spec.loader.exec_module(module)
|
| 832 |
+
# Get the function object
|
| 833 |
+
function_object = getattr(module, func_name)
|
| 834 |
+
|
| 835 |
+
# Change to /tmp directory before calling IBM Watson SDK functions
|
| 836 |
+
os.chdir('/tmp')
|
| 837 |
+
|
| 838 |
+
# Upload the function object
|
| 839 |
+
mo.md(f"Uploading function object: {func_name}")
|
| 840 |
+
func_details = deployment_client.repository.store_function(function_object, function_meta)
|
| 841 |
+
else:
|
| 842 |
+
# Change to /tmp directory before calling IBM Watson SDK functions
|
| 843 |
+
os.chdir('/tmp')
|
| 844 |
+
|
| 845 |
+
# Upload using the file path approach
|
| 846 |
+
mo.md(f"Uploading function from file: {file_path}")
|
| 847 |
+
func_details = deployment_client.repository.store_function(file_path, function_meta)
|
| 848 |
+
|
| 849 |
+
set_upload_status(f"Latest Upload - id - {func_details['metadata']['id']}")
|
| 850 |
+
return func_details
|
| 851 |
+
except Exception as e:
|
| 852 |
+
set_upload_status(f"Error uploading function: {str(e)}")
|
| 853 |
+
mo.md(f"Detailed error: {str(e)}")
|
| 854 |
+
raise
|
| 855 |
+
finally:
|
| 856 |
+
# Always change back to the original directory, even if an exception occurs
|
| 857 |
+
os.chdir(original_dir)
|
| 858 |
+
|
| 859 |
+
upload_status = mo.state("No uploads yet")
|
| 860 |
+
|
| 861 |
+
upload_button = mo.ui.button(
|
| 862 |
+
label="Upload Function",
|
| 863 |
+
on_click=lambda _: upload_function(function_meta, use_function_object=True),
|
| 864 |
+
kind="success",
|
| 865 |
+
tooltip="Click to upload function to watsonx.ai"
|
| 866 |
+
)
|
| 867 |
+
|
| 868 |
+
# function_meta
|
| 869 |
+
return (
|
| 870 |
+
filtered_tags,
|
| 871 |
+
function_meta,
|
| 872 |
+
get_upload_status,
|
| 873 |
+
set_upload_status,
|
| 874 |
+
upload_button,
|
| 875 |
+
upload_function,
|
| 876 |
+
upload_status,
|
| 877 |
+
)
|
| 878 |
+
|
| 879 |
+
|
| 880 |
+
@app.cell
|
| 881 |
+
def _(get_upload_status, mo, upload_button):
|
| 882 |
+
# Upload your function
|
| 883 |
+
if upload_button.value:
|
| 884 |
+
try:
|
| 885 |
+
upload_result = upload_button.value
|
| 886 |
+
artifact_id = upload_result['metadata']['id']
|
| 887 |
+
except Exception as e:
|
| 888 |
+
mo.md(f"Error: {str(e)}")
|
| 889 |
+
|
| 890 |
+
upload_func = mo.vstack([
|
| 891 |
+
upload_button,
|
| 892 |
+
mo.md(f"**Status:** {get_upload_status()}")
|
| 893 |
+
], justify="space-around", align="center")
|
| 894 |
+
return artifact_id, upload_func, upload_result
|
| 895 |
+
|
| 896 |
+
|
| 897 |
+
@app.cell
|
| 898 |
+
def _(deployment_client, mo, pd, upload_button, uuid):
|
| 899 |
+
def reorder_hardware_specifications(df):
|
| 900 |
+
"""
|
| 901 |
+
Reorders a hardware specifications dataframe by type and size of environment
|
| 902 |
+
without hardcoding specific hardware types.
|
| 903 |
+
|
| 904 |
+
Parameters:
|
| 905 |
+
df (pandas.DataFrame): The hardware specifications dataframe to reorder
|
| 906 |
+
|
| 907 |
+
Returns:
|
| 908 |
+
pandas.DataFrame: Reordered dataframe with reset index
|
| 909 |
+
"""
|
| 910 |
+
# Create a copy to avoid modifying the original dataframe
|
| 911 |
+
result_df = df.copy()
|
| 912 |
+
|
| 913 |
+
# Define a function to extract the base type and size
|
| 914 |
+
def get_sort_key(name):
|
| 915 |
+
# Create a custom ordering list
|
| 916 |
+
custom_order = [
|
| 917 |
+
"XXS", "XS", "S", "M", "L", "XL",
|
| 918 |
+
"XS-Spark", "S-Spark", "M-Spark", "L-Spark", "XL-Spark",
|
| 919 |
+
"K80", "K80x2", "K80x4",
|
| 920 |
+
"V100", "V100x2",
|
| 921 |
+
"WXaaS-XS", "WXaaS-S", "WXaaS-M", "WXaaS-L", "WXaaS-XL",
|
| 922 |
+
"Default Spark", "Notebook Default Spark", "ML"
|
| 923 |
+
]
|
| 924 |
+
|
| 925 |
+
# If name is in the custom order list, use its index
|
| 926 |
+
if name in custom_order:
|
| 927 |
+
return (0, custom_order.index(name))
|
| 928 |
+
|
| 929 |
+
# For any name not in the custom order, put it at the end
|
| 930 |
+
return (1, name)
|
| 931 |
+
|
| 932 |
+
# Add a temporary column for sorting
|
| 933 |
+
result_df['sort_key'] = result_df['NAME'].apply(get_sort_key)
|
| 934 |
+
|
| 935 |
+
# Sort the dataframe and drop the temporary column
|
| 936 |
+
result_df = result_df.sort_values('sort_key').drop('sort_key', axis=1)
|
| 937 |
+
|
| 938 |
+
# Reset the index
|
| 939 |
+
result_df = result_df.reset_index(drop=True)
|
| 940 |
+
|
| 941 |
+
return result_df
|
| 942 |
+
|
| 943 |
+
if deployment_client and upload_button.value:
|
| 944 |
+
|
| 945 |
+
hardware_specs = deployment_client.hardware_specifications.list()
|
| 946 |
+
hardware_specs_df = reorder_hardware_specifications(hardware_specs)
|
| 947 |
+
|
| 948 |
+
# Create a table with single-row selection
|
| 949 |
+
hw_selection_table = mo.ui.table(
|
| 950 |
+
hardware_specs_df,
|
| 951 |
+
selection="single", # Only allow selecting one row
|
| 952 |
+
label="#### **Select a supported hardware_specification for your deployment** *(Default: 'XS' - 1vCPU_4GB Ram)*",
|
| 953 |
+
initial_selection=[1],
|
| 954 |
+
page_size=6,
|
| 955 |
+
wrapped_columns=['DESCRIPTION']
|
| 956 |
+
)
|
| 957 |
+
|
| 958 |
+
deployment_type = mo.ui.radio(
|
| 959 |
+
options={"Function":"Online (Function Endpoint)","Runnable Job":"Batch (Runnable Jobs)"}, value="Function", label="Select the Type of Deployment:", inline=True
|
| 960 |
+
)
|
| 961 |
+
uuid_suffix = str(uuid.uuid4())[:4]
|
| 962 |
+
|
| 963 |
+
deployment_name = mo.ui.text(value=f"deployed_func_{uuid_suffix}", label="Deployment Name:", placeholder="<Must be completely unique>")
|
| 964 |
+
else:
|
| 965 |
+
hw_df = pd.DataFrame(
|
| 966 |
+
data=[["ID", "Activate deployment_client."]],
|
| 967 |
+
columns=["ID", "VALUE"]
|
| 968 |
+
)
|
| 969 |
+
|
| 970 |
+
hw_selection_table = mo.ui.table(
|
| 971 |
+
hw_df,
|
| 972 |
+
selection="single", # Only allow selecting one row
|
| 973 |
+
label="You haven't activated the Deployment_Client",
|
| 974 |
+
initial_selection=[0]
|
| 975 |
+
)
|
| 976 |
+
|
| 977 |
+
|
| 978 |
+
# mo.md(f"""
|
| 979 |
+
# <br>
|
| 980 |
+
# <br>
|
| 981 |
+
# {upload_func}
|
| 982 |
+
# <br>
|
| 983 |
+
# <br>
|
| 984 |
+
# ---
|
| 985 |
+
# {hw_selection_table}
|
| 986 |
+
# <br>
|
| 987 |
+
# <br>
|
| 988 |
+
|
| 989 |
+
|
| 990 |
+
# """)
|
| 991 |
+
return (
|
| 992 |
+
deployment_name,
|
| 993 |
+
deployment_type,
|
| 994 |
+
hardware_specs,
|
| 995 |
+
hardware_specs_df,
|
| 996 |
+
hw_df,
|
| 997 |
+
hw_selection_table,
|
| 998 |
+
reorder_hardware_specifications,
|
| 999 |
+
uuid_suffix,
|
| 1000 |
+
)
|
| 1001 |
+
|
| 1002 |
+
|
| 1003 |
+
@app.cell
|
| 1004 |
+
def _(
|
| 1005 |
+
artifact_id,
|
| 1006 |
+
deployment_client,
|
| 1007 |
+
deployment_details,
|
| 1008 |
+
deployment_name,
|
| 1009 |
+
deployment_type,
|
| 1010 |
+
hw_selection_table,
|
| 1011 |
+
mo,
|
| 1012 |
+
print,
|
| 1013 |
+
upload_button,
|
| 1014 |
+
):
|
| 1015 |
+
def deploy_function(artifact_id, deployment_type):
|
| 1016 |
+
"""
|
| 1017 |
+
Deploys a function asset to watsonx.ai.
|
| 1018 |
+
|
| 1019 |
+
Parameters:
|
| 1020 |
+
artifact_id (str): ID of the function artifact to deploy
|
| 1021 |
+
deployment_type (object): Type of deployment (online or batch)
|
| 1022 |
+
|
| 1023 |
+
Returns:
|
| 1024 |
+
dict: Details of the deployed function
|
| 1025 |
+
"""
|
| 1026 |
+
if not artifact_id:
|
| 1027 |
+
print("Error: No artifact ID provided. Please upload a function first.")
|
| 1028 |
+
return None
|
| 1029 |
+
|
| 1030 |
+
if deployment_type.value == "Online (Function Endpoint)": # Changed from "Online (Function Endpoint)"
|
| 1031 |
+
deployment_props = {
|
| 1032 |
+
deployment_client.deployments.ConfigurationMetaNames.NAME: deployment_name.value,
|
| 1033 |
+
deployment_client.deployments.ConfigurationMetaNames.ONLINE: {},
|
| 1034 |
+
deployment_client.deployments.ConfigurationMetaNames.HARDWARE_SPEC: {"id": selected_hw_config},
|
| 1035 |
+
deployment_client.deployments.ConfigurationMetaNames.SERVING_NAME: deployment_name.value,
|
| 1036 |
+
}
|
| 1037 |
+
else: # "Runnable Job" instead of "Batch (Runnable Jobs)"
|
| 1038 |
+
deployment_props = {
|
| 1039 |
+
deployment_client.deployments.ConfigurationMetaNames.NAME: deployment_name.value,
|
| 1040 |
+
deployment_client.deployments.ConfigurationMetaNames.BATCH: {},
|
| 1041 |
+
deployment_client.deployments.ConfigurationMetaNames.HARDWARE_SPEC: {"id": selected_hw_config},
|
| 1042 |
+
# batch does not use serving names
|
| 1043 |
+
}
|
| 1044 |
+
|
| 1045 |
+
try:
|
| 1046 |
+
print(deployment_props)
|
| 1047 |
+
# First, get the asset details to confirm it exists
|
| 1048 |
+
asset_details = deployment_client.repository.get_details(artifact_id)
|
| 1049 |
+
print(f"Asset found: {asset_details['metadata']['name']} with ID: {asset_details['metadata']['id']}")
|
| 1050 |
+
|
| 1051 |
+
# Create the deployment
|
| 1052 |
+
deployed_function = deployment_client.deployments.create(artifact_id, deployment_props)
|
| 1053 |
+
print(f"Creating deployment from Asset: {artifact_id} with deployment properties {str(deployment_props)}")
|
| 1054 |
+
return deployed_function
|
| 1055 |
+
except Exception as e:
|
| 1056 |
+
print(f"Deployment error: {str(e)}")
|
| 1057 |
+
return None
|
| 1058 |
+
|
| 1059 |
+
def get_deployment_id(deployed_function):
|
| 1060 |
+
deployment_id = deployment_client.deployments.get_uid(deployment_details)
|
| 1061 |
+
return deployment_id
|
| 1062 |
+
|
| 1063 |
+
def get_deployment_info(deployment_id):
|
| 1064 |
+
deployment_info = deployment_client.deployments.get_details(deployment_id)
|
| 1065 |
+
return deployment_info
|
| 1066 |
+
|
| 1067 |
+
deployment_status = mo.state("No deployments yet")
|
| 1068 |
+
|
| 1069 |
+
if hw_selection_table.value['ID'].iloc[0]:
|
| 1070 |
+
selected_hw_config = hw_selection_table.value['ID'].iloc[0]
|
| 1071 |
+
|
| 1072 |
+
deploy_button = mo.ui.button(
|
| 1073 |
+
label="Deploy Function",
|
| 1074 |
+
on_click=lambda _: deploy_function(artifact_id, deployment_type),
|
| 1075 |
+
kind="success",
|
| 1076 |
+
tooltip="Click to deploy function to watsonx.ai"
|
| 1077 |
+
)
|
| 1078 |
+
|
| 1079 |
+
if deployment_client and upload_button.value:
|
| 1080 |
+
deployment_definition = mo.hstack([
|
| 1081 |
+
deployment_type,
|
| 1082 |
+
deployment_name
|
| 1083 |
+
], justify="space-around")
|
| 1084 |
+
else:
|
| 1085 |
+
deployment_definition = mo.hstack([
|
| 1086 |
+
"No Deployment Type Selected",
|
| 1087 |
+
"No Deployment Name Provided"
|
| 1088 |
+
], justify="space-around")
|
| 1089 |
+
|
| 1090 |
+
# deployment_definition
|
| 1091 |
+
return (
|
| 1092 |
+
deploy_button,
|
| 1093 |
+
deploy_function,
|
| 1094 |
+
deployment_definition,
|
| 1095 |
+
deployment_status,
|
| 1096 |
+
get_deployment_id,
|
| 1097 |
+
get_deployment_info,
|
| 1098 |
+
selected_hw_config,
|
| 1099 |
+
)
|
| 1100 |
+
|
| 1101 |
+
|
| 1102 |
+
@app.cell
|
| 1103 |
+
def _(deploy_button, deployment_definition, mo):
|
| 1104 |
+
_ = deployment_definition
|
| 1105 |
+
|
| 1106 |
+
deploy_fnc = mo.vstack([
|
| 1107 |
+
deploy_button,
|
| 1108 |
+
deploy_button.value
|
| 1109 |
+
], justify="space-around", align="center")
|
| 1110 |
+
|
| 1111 |
+
# mo.md(f"""
|
| 1112 |
+
# {deployment_definition}
|
| 1113 |
+
# <br>
|
| 1114 |
+
# <br>
|
| 1115 |
+
# {deploy_fnc}
|
| 1116 |
+
|
| 1117 |
+
# ---
|
| 1118 |
+
# """)
|
| 1119 |
+
return (deploy_fnc,)
|
| 1120 |
+
|
| 1121 |
+
|
| 1122 |
+
@app.cell(hide_code=True)
|
| 1123 |
+
def _(deployment_client, mo):
|
| 1124 |
+
### Functions to List , Get ID's as a list and Purge of Assets
|
| 1125 |
+
|
| 1126 |
+
def get_deployment_list():
|
| 1127 |
+
deployment_df = deployment_client.deployments.list()
|
| 1128 |
+
return deployment_df
|
| 1129 |
+
|
| 1130 |
+
def get_deployment_ids(df):
|
| 1131 |
+
dep_list = df['ID'].tolist()
|
| 1132 |
+
return dep_list
|
| 1133 |
+
|
| 1134 |
+
def get_data_assets_list():
|
| 1135 |
+
data_assets_df = deployment_client.data_assets.list()
|
| 1136 |
+
return data_assets_df
|
| 1137 |
+
|
| 1138 |
+
def get_data_asset_ids(df):
|
| 1139 |
+
data_asset_list = df['ASSET_ID'].tolist()
|
| 1140 |
+
return data_asset_list
|
| 1141 |
+
|
| 1142 |
+
### List Repository Assets, Get ID's as a list and Purge Repository Assets (AI Services, Functions, Models, etc.)
|
| 1143 |
+
def get_repository_list():
|
| 1144 |
+
repository_df = deployment_client.repository.list()
|
| 1145 |
+
return repository_df
|
| 1146 |
+
|
| 1147 |
+
def get_repository_ids(df):
|
| 1148 |
+
repository_list = df['ID'].tolist()
|
| 1149 |
+
return repository_list
|
| 1150 |
+
|
| 1151 |
+
def delete_with_progress(ids_list, delete_function, item_type="items"):
|
| 1152 |
+
"""
|
| 1153 |
+
Generic wrapper that adds a progress bar to any deletion function
|
| 1154 |
+
|
| 1155 |
+
Parameters:
|
| 1156 |
+
ids_list: List of IDs to delete
|
| 1157 |
+
delete_function: Function that deletes a single ID
|
| 1158 |
+
item_type: String describing what's being deleted (for display)
|
| 1159 |
+
"""
|
| 1160 |
+
with mo.status.progress_bar(
|
| 1161 |
+
total=len(ids_list) or 1,
|
| 1162 |
+
title=f"Purging {item_type}",
|
| 1163 |
+
subtitle=f"Deleting {item_type}...",
|
| 1164 |
+
completion_title="Purge Complete",
|
| 1165 |
+
completion_subtitle=f"Successfully deleted {len(ids_list)} {item_type}"
|
| 1166 |
+
) as progress:
|
| 1167 |
+
for item_id in ids_list:
|
| 1168 |
+
delete_function(item_id)
|
| 1169 |
+
progress.update(increment=1)
|
| 1170 |
+
return f"Deleted {len(ids_list)} {item_type} successfully"
|
| 1171 |
+
|
| 1172 |
+
# Use with existing deletion functions
|
| 1173 |
+
def delete_deployments(deployment_ids):
|
| 1174 |
+
return delete_with_progress(
|
| 1175 |
+
deployment_ids,
|
| 1176 |
+
lambda id: deployment_client.deployments.delete(id),
|
| 1177 |
+
"deployments"
|
| 1178 |
+
)
|
| 1179 |
+
|
| 1180 |
+
def delete_data_assets(data_asset_ids):
|
| 1181 |
+
return delete_with_progress(
|
| 1182 |
+
data_asset_ids,
|
| 1183 |
+
lambda id: deployment_client.data_assets.delete(id),
|
| 1184 |
+
"data assets"
|
| 1185 |
+
)
|
| 1186 |
+
|
| 1187 |
+
def delete_repository_items(repository_ids):
|
| 1188 |
+
return delete_with_progress(
|
| 1189 |
+
repository_ids,
|
| 1190 |
+
lambda id: deployment_client.repository.delete(id),
|
| 1191 |
+
"repository items"
|
| 1192 |
+
)
|
| 1193 |
+
return (
|
| 1194 |
+
delete_data_assets,
|
| 1195 |
+
delete_deployments,
|
| 1196 |
+
delete_repository_items,
|
| 1197 |
+
delete_with_progress,
|
| 1198 |
+
get_data_asset_ids,
|
| 1199 |
+
get_data_assets_list,
|
| 1200 |
+
get_deployment_ids,
|
| 1201 |
+
get_deployment_list,
|
| 1202 |
+
get_repository_ids,
|
| 1203 |
+
get_repository_list,
|
| 1204 |
+
)
|
| 1205 |
+
|
| 1206 |
+
|
| 1207 |
+
@app.cell
|
| 1208 |
+
def _(get_deployment_id_list, get_deployments_button, mo, purge_deployments):
|
| 1209 |
+
deployments_purge_stack = mo.hstack([get_deployments_button, get_deployment_id_list, purge_deployments])
|
| 1210 |
+
deployments_purge_stack_results = mo.vstack([get_deployments_button.value, get_deployment_id_list.value, purge_deployments.value])
|
| 1211 |
+
|
| 1212 |
+
deployments_purge_tab = mo.vstack([deployments_purge_stack, deployments_purge_stack_results])
|
| 1213 |
+
return (
|
| 1214 |
+
deployments_purge_stack,
|
| 1215 |
+
deployments_purge_stack_results,
|
| 1216 |
+
deployments_purge_tab,
|
| 1217 |
+
)
|
| 1218 |
+
|
| 1219 |
+
|
| 1220 |
+
@app.cell
|
| 1221 |
+
def _(get_repository_button, get_repository_id_list, mo, purge_repository):
|
| 1222 |
+
repository_purge_stack = mo.hstack([get_repository_button, get_repository_id_list, purge_repository])
|
| 1223 |
+
|
| 1224 |
+
repository_purge_stack_results = mo.vstack([get_repository_button.value, get_repository_id_list.value, purge_repository.value])
|
| 1225 |
+
|
| 1226 |
+
repository_purge_tab = mo.vstack([repository_purge_stack, repository_purge_stack_results])
|
| 1227 |
+
return (
|
| 1228 |
+
repository_purge_stack,
|
| 1229 |
+
repository_purge_stack_results,
|
| 1230 |
+
repository_purge_tab,
|
| 1231 |
+
)
|
| 1232 |
+
|
| 1233 |
+
|
| 1234 |
+
@app.cell
|
| 1235 |
+
def _(get_data_asset_id_list, get_data_assets_button, mo, purge_data_assets):
|
| 1236 |
+
data_assets_purge_stack = mo.hstack([get_data_assets_button, get_data_asset_id_list, purge_data_assets])
|
| 1237 |
+
data_assets_purge_stack_results = mo.vstack([get_data_assets_button.value, get_data_asset_id_list.value, purge_data_assets.value])
|
| 1238 |
+
|
| 1239 |
+
data_assets_purge_tab = mo.vstack([data_assets_purge_stack, data_assets_purge_stack_results])
|
| 1240 |
+
return (
|
| 1241 |
+
data_assets_purge_stack,
|
| 1242 |
+
data_assets_purge_stack_results,
|
| 1243 |
+
data_assets_purge_tab,
|
| 1244 |
+
)
|
| 1245 |
+
|
| 1246 |
+
|
| 1247 |
+
@app.cell
|
| 1248 |
+
def _(data_assets_purge_tab, deployments_purge_tab, mo, repository_purge_tab):
|
| 1249 |
+
purge_tabs = mo.ui.tabs(
|
| 1250 |
+
{"Purge Deployments": deployments_purge_tab, "Purge Repository Assets": repository_purge_tab,"Purge Data Assets": data_assets_purge_tab }, lazy=False
|
| 1251 |
+
)
|
| 1252 |
+
|
| 1253 |
+
# asset_purge = mo.accordion(
|
| 1254 |
+
# {
|
| 1255 |
+
# """<br>
|
| 1256 |
+
# #### **Supporting Cleanup Functionality, lists of different assets and purge them if needed** *(purges all detected)*
|
| 1257 |
+
# <br>""": purge_tabs,
|
| 1258 |
+
# }
|
| 1259 |
+
# )
|
| 1260 |
+
|
| 1261 |
+
# asset_purge
|
| 1262 |
+
return (purge_tabs,)
|
| 1263 |
+
|
| 1264 |
+
|
| 1265 |
+
@app.cell(hide_code=True)
|
| 1266 |
+
def _(
|
| 1267 |
+
delete_data_assets,
|
| 1268 |
+
delete_deployments,
|
| 1269 |
+
delete_repository_items,
|
| 1270 |
+
get_data_asset_ids,
|
| 1271 |
+
get_data_assets_list,
|
| 1272 |
+
get_deployment_ids,
|
| 1273 |
+
get_deployment_list,
|
| 1274 |
+
get_repository_ids,
|
| 1275 |
+
get_repository_list,
|
| 1276 |
+
mo,
|
| 1277 |
+
):
|
| 1278 |
+
### Temporary Function Purge - Assets
|
| 1279 |
+
get_data_assets_button = mo.ui.button(
|
| 1280 |
+
label="Get Data Assets Dataframe",
|
| 1281 |
+
on_click=lambda _: get_data_assets_list(),
|
| 1282 |
+
kind="neutral",
|
| 1283 |
+
)
|
| 1284 |
+
|
| 1285 |
+
get_data_asset_id_list = mo.ui.button(
|
| 1286 |
+
label="Turn Dataframe into List of IDs",
|
| 1287 |
+
on_click=lambda _: get_data_asset_ids(get_data_assets_button.value),
|
| 1288 |
+
kind="neutral",
|
| 1289 |
+
)
|
| 1290 |
+
|
| 1291 |
+
purge_data_assets = mo.ui.button(
|
| 1292 |
+
label="Purge Data Assets",
|
| 1293 |
+
on_click=lambda _: delete_data_assets(get_data_asset_id_list.value),
|
| 1294 |
+
kind="danger",
|
| 1295 |
+
)
|
| 1296 |
+
|
| 1297 |
+
### Temporary Function Purge - Deployments
|
| 1298 |
+
get_deployments_button = mo.ui.button(
|
| 1299 |
+
label="Get Deployments Dataframe",
|
| 1300 |
+
on_click=lambda _: get_deployment_list(),
|
| 1301 |
+
kind="neutral",
|
| 1302 |
+
)
|
| 1303 |
+
|
| 1304 |
+
get_deployment_id_list = mo.ui.button(
|
| 1305 |
+
label="Turn Dataframe into List of IDs",
|
| 1306 |
+
on_click=lambda _: get_deployment_ids(get_deployments_button.value),
|
| 1307 |
+
kind="neutral",
|
| 1308 |
+
)
|
| 1309 |
+
|
| 1310 |
+
purge_deployments = mo.ui.button(
|
| 1311 |
+
label="Purge Deployments",
|
| 1312 |
+
on_click=lambda _: delete_deployments(get_deployment_id_list.value),
|
| 1313 |
+
kind="danger",
|
| 1314 |
+
)
|
| 1315 |
+
|
| 1316 |
+
### Repository Items Purge
|
| 1317 |
+
get_repository_button = mo.ui.button(
|
| 1318 |
+
label="Get Repository Dataframe",
|
| 1319 |
+
on_click=lambda _: get_repository_list(),
|
| 1320 |
+
kind="neutral",
|
| 1321 |
+
)
|
| 1322 |
+
|
| 1323 |
+
get_repository_id_list = mo.ui.button(
|
| 1324 |
+
label="Turn Dataframe into List of IDs",
|
| 1325 |
+
on_click=lambda _: get_repository_ids(get_repository_button.value),
|
| 1326 |
+
kind="neutral",
|
| 1327 |
+
)
|
| 1328 |
+
|
| 1329 |
+
purge_repository = mo.ui.button(
|
| 1330 |
+
label="Purge Repository Items",
|
| 1331 |
+
on_click=lambda _: delete_repository_items(get_repository_id_list.value),
|
| 1332 |
+
kind="danger",
|
| 1333 |
+
)
|
| 1334 |
+
return (
|
| 1335 |
+
get_data_asset_id_list,
|
| 1336 |
+
get_data_assets_button,
|
| 1337 |
+
get_deployment_id_list,
|
| 1338 |
+
get_deployments_button,
|
| 1339 |
+
get_repository_button,
|
| 1340 |
+
get_repository_id_list,
|
| 1341 |
+
purge_data_assets,
|
| 1342 |
+
purge_deployments,
|
| 1343 |
+
purge_repository,
|
| 1344 |
+
)
|
| 1345 |
+
|
| 1346 |
+
|
| 1347 |
+
if __name__ == "__main__":
|
| 1348 |
+
app.run()
|