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513da9b
Merge pull request #24055 from LindsayBert/master
rbrainey Oct 30, 2025
073c4c2
application-frontend-cli: add Enable CLI section, add/fix images
micellius Nov 2, 2025
b6a3e01
Remove step to upgrade ui5 to latest
neelamegams Nov 11, 2025
ccd8b45
Merge pull request #24051 from micellius/master
rbrainey Nov 12, 2025
6a82fca
Publish tutorial: application-frontend-cli
rbrainey Nov 12, 2025
bb0bbb7
Merge pull request #24057 from rbrainey/master
rbrainey Nov 12, 2025
716c62f
Updates to the SAP HANA Cloud Jump Start tutorials
danielva Nov 13, 2025
27271d0
Merge pull request #24058 from danielva/master
rbrainey Nov 14, 2025
0bb97e8
Updates to the SAP HANA Cloud Jump Start tutorials
danielva Nov 14, 2025
1a23b4d
revert tags to before - appfrontend create
neelamegams Nov 17, 2025
6c9a5be
fix bullet and numbering
neelamegams Nov 17, 2025
fa23d2a
Readd the step as temp removing in the demo
neelamegams Nov 17, 2025
d7fe687
update node version
neelamegams Nov 17, 2025
08b5d32
Merge pull request #24059 from danielva/master
rbrainey Nov 17, 2025
ca8945d
Fix broken links and title capitalization for data lake and HC tutorials
danielva Nov 18, 2025
7e56ce3
Merge pull request #24060 from danielva/master
rbrainey Nov 20, 2025
19efeda
Update graceful shutdown value for BTP CF
beyhan Nov 20, 2025
632ee84
fixed a sentence with errors
neelamegams Nov 20, 2025
3994fad
Merge pull request #24061 from beyhan/patch-1
rbrainey Nov 24, 2025
28ee977
prompt optimization
I321506 Nov 26, 2025
b11bdfe
update to fiori-tools-cap-create tutorials
hitesh-parmar Nov 28, 2025
bd099c6
Merge branch 'master' of https://github.com/hitesh-parmar/Tutorials
hitesh-parmar Nov 28, 2025
fbd762a
Merge pull request #24065 from hitesh-parmar/master
rbrainey Dec 1, 2025
df569c1
Merge pull request #24064 from I321506/aicore-optimization
rbrainey Dec 1, 2025
97c8e1a
incident-management-tutorial-update
hitesh-parmar Dec 1, 2025
4b1c87c
remove image
hitesh-parmar Dec 1, 2025
7d8bc18
update tags
hitesh-parmar Dec 1, 2025
b380d08
several updates
hitesh-parmar Dec 1, 2025
1c41baa
fix tags
hitesh-parmar Dec 1, 2025
a9d849a
Merge pull request #24067 from hitesh-parmar/master
rbrainey Dec 1, 2025
06f1d24
Publish tutorial: fiori-tools-cap-create-application
rbrainey Dec 5, 2025
a75110f
Merge pull request #24068 from rbrainey/master
rbrainey Dec 5, 2025
2b605ac
Publish tutorial: fiori-tools-cap-create-application
rbrainey Dec 5, 2025
940ea3e
Merge pull request #24069 from rbrainey/master
rbrainey Dec 5, 2025
0d3fd23
Publish tutorial: fiori-tools-cap-prepare-dev-env
rbrainey Dec 5, 2025
8565329
Merge pull request #24070 from rbrainey/master
rbrainey Dec 5, 2025
d99f8ff
Publish tutorial: fiori-tools-cap-prepare-dev-env
rbrainey Dec 8, 2025
c3795c9
Merge pull request #24072 from rbrainey/master
rbrainey Dec 8, 2025
0dd4df7
docs: update Terraform provider version to latest
lechnerc77 Dec 12, 2025
0f10cca
Update deploy-nodejs-application-kyma.md
TiaXu1122 Dec 15, 2025
9c49afb
Merge pull request #24073 from lechnerc77/docs/update-provider-version
rbrainey Dec 15, 2025
ed2ac6f
Merge pull request #24075 from TiaXu1122/master
rbrainey Dec 15, 2025
edd9ce6
remove feature set A
nicoschoenteich Dec 22, 2025
bc0e34f
Updates to the SAP HANA Cloud tutorials
danielva Jan 3, 2026
67009e6
New tutorial on data product consumption in SAP HANA Cloud
danielva Jan 7, 2026
12d9291
Merge pull request #24079 from danielva/master
rbrainey Jan 8, 2026
eb2dbcb
Merge pull request #24076 from nicoschoenteich/master
rbrainey Jan 8, 2026
a3f2513
add new aicore tutorials
I321506 Jan 16, 2026
c8648fe
minor changes
I321506 Jan 16, 2026
d79cf31
Merge pull request #24082 from I321506/aicore-tutorial-update4
rbrainey Jan 19, 2026
1b1b12b
start of new OData Deep Dive mission
qmacro Jan 22, 2026
3879dd8
tidy dd-2
qmacro Jan 22, 2026
14c4647
more work on dd-2
qmacro Jan 23, 2026
e1a1b4a
complete draft of odata-dd-2
qmacro Jan 26, 2026
10cbb3d
minor tweaks to odata-dd-2
qmacro Jan 26, 2026
add289d
minor fixes
BastLena Jan 29, 2026
c8ccb8d
Merge remote-tracking branch 'upstream/master'
BastLena Jan 29, 2026
7dcacd3
workarounds for rendering challenges
qmacro Jan 29, 2026
2e11a56
more realistic times for odata-dd 1 and 2
qmacro Jan 29, 2026
7be5c8a
Merge pull request #24083 from BastLena/master
rbrainey Jan 30, 2026
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Original file line number Diff line number Diff line change
@@ -0,0 +1,34 @@
{
"createdAt": "2025-08-18 09:38:01.990700",
"name": "groundedness",
"scenario": "genai-evaluations",
"version": "0.0.1",
"evaluationMethod": "llm-as-a-judge",
"metricType": "evaluation",
"managedBy": "imperative",
"systemPredefined": false,
"spec": {
"promptType": "free-form",
"configuration": {
"modelConfiguration": {
"name": "gpt-4o",
"version": "2024-08-06",
"parameters": [
{
"key": "temperature",
"value": "0.1"
},
{
"key": "max_tokens",
"value": "110"
}
]
},
"promptConfiguration": {
"systemPrompt": "You should strictly follow the instruction given to you. Please act as an impartial judge and evaluate the quality of the responses based on the prompt and following criteria:",
"userPrompt": "You are an expert evaluator. Your task is to evaluate the quality of the responses generated by AI models. We will provide you with a reference and an AI-generated response. You should first read the user input carefully for analyzing the task, and then evaluate the quality of the responses based on the criteria provided in the Evaluation section below. You will assign the response a rating following the Rating Rubric and Evaluation Steps. Give step-by-step explanations for your rating, and only choose ratings from the Rating Rubric.\n\n## Metric Definition\nYou are an INFORMATION OVERLAP classifier providing the overlap of information between a response and reference.\n\n## Criteria\nGroundedness: The of information between a response generated by AI models and provided reference.\n\n## Rating Rubric\n5: (Fully grounded). The response and the reference are fully overlapped.\n4: (Mostly grounded). The response and the reference are mostly overlapped.\n3: (Somewhat grounded). The response and the reference are somewhat overlapped.\n2: (Poorly grounded). The response and the reference are slightly overlapped.\n1: (Not grounded). There is no overlap between the response and the reference.\n\n## Evaluation Steps\nSTEP 1: Assess the response in aspects of Groundedness. Identify any information in the response and provide assessment according to the Criteria.\nSTEP 2: Score based on the rating rubric. Give a brief rationale to explain your evaluation considering Groundedness.\n\nReference: {{?reference}}\nResponse: {{?aicore_llm_completion}}\n\nBegin your evaluation by providing a short explanation. Be as unbiased as possible. After providing your explanation, please rate the response according to the rubric and outputs STRICTLY following this JSON format:\n\n{ \"explanation\": string, \"rating\": integer }\n\nOutput:\n",
"dataType": "numeric"
}
}
}
}
Original file line number Diff line number Diff line change
@@ -0,0 +1 @@
{"createdAt":"2025-08-18 09:38:01.990700","name":"groundedness","scenario":"genai-evaluations","version":"0.1.6","evaluationMethod":"llm-as-a-judge", "metricType":"evaluation", "managedBy":"imperative","systemPredefined":false,"spec":{"promptType":"free-form","configuration":{"modelConfiguration":{"name":"gpt-4o","version":"2024-08-06","parameters":[{"key":"temperature","value":"0.1"},{"key":"max_tokens","value":"110"}]},"promptConfiguration":{"systemPrompt":"You should strictly follow the instruction given to you. Please act as an impartial judge and evaluate the quality of the responses based on the prompt and following criteria:","userPrompt":"You are an expert evaluator. Your task is to evaluate the quality of the responses generated by AI models. We will provide you with a reference and an AI-generated response. You should first read the user input carefully for analyzing the task, and then evaluate the quality of the responses based on the criteria provided in the Evaluation section below. You will assign the response a rating following the Rating Rubric and Evaluation Steps. Give step-by-step explanations for your rating, and only choose ratings from the Rating Rubric.\n\n## Metric Definition\nYou are an INFORMATION OVERLAP classifier providing the overlap of information between a response and reference.\n\n## Criteria\nGroundedness: The of information between a response generated by AI models and provided reference.\n\n## Rating Rubric\n5: (Fully grounded). The response and the reference are fully overlapped.\n4: (Mostly grounded). The response and the reference are mostly overlapped.\n3: (Somewhat grounded). The response and the reference are somewhat overlapped.\n2: (Poorly grounded). The response and the reference are slightly overlapped.\n1: (Not grounded). There is no overlap between the response and the reference.\n\n## Evaluation Steps\nSTEP 1: Assess the response in aspects of Groundedness. Identify any information in the response and provide assessment according to the Criteria.\nSTEP 2: Score based on the rating rubric. Give a brief rationale to explain your evaluation considering Groundedness.\n\nReference: {{?reference}}\nResponse: {{?aicore_llm_completion}}\n\nBegin your evaluation by providing a short explanation. Be as unbiased as possible. After providing your explanation, please rate the response according to the rubric and outputs STRICTLY following this JSON format:\n\n{ \"explanation\": string, \"rating\": integer }\n\nOutput:\n","dataType":"numeric"}}}}
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