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2 | "access_rights": "Public", | 2 | "access_rights": "Public", | ||
3 | "accrualPeriodicity": "", | 3 | "accrualPeriodicity": "", | ||
4 | "author": "Disha Purohit", | 4 | "author": "Disha Purohit", | ||
5 | "author_email": "disha.purohit@tib.eu", | 5 | "author_email": "disha.purohit@tib.eu", | ||
6 | "citation": [], | 6 | "citation": [], | ||
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8 | "creator_user_id": "f7cd6563-f944-40d2-b88a-ec1b2ccfc7d1", | 8 | "creator_user_id": "f7cd6563-f944-40d2-b88a-ec1b2ccfc7d1", | ||
9 | "defined_in": "", | 9 | "defined_in": "", | ||
10 | "doi": "10.57702/38jfs1vi", | 10 | "doi": "10.57702/38jfs1vi", | ||
11 | "doi_date_published": "2024-09-19", | 11 | "doi_date_published": "2024-09-19", | ||
12 | "doi_publisher": "TIB", | 12 | "doi_publisher": "TIB", | ||
13 | "doi_status": true, | 13 | "doi_status": true, | ||
14 | "domain": "https://service.tib.eu/ldmservice", | 14 | "domain": "https://service.tib.eu/ldmservice", | ||
15 | "end_date": "", | 15 | "end_date": "", | ||
16 | "extra_authors": [ | 16 | "extra_authors": [ | ||
17 | { | 17 | { | ||
18 | "extra_author": "Yashrajsinh Chudasama", | 18 | "extra_author": "Yashrajsinh Chudasama", | ||
19 | "orcid": "https://orcid.org/0000-0003-3422-366X" | 19 | "orcid": "https://orcid.org/0000-0003-3422-366X" | ||
20 | }, | 20 | }, | ||
21 | { | 21 | { | ||
22 | "extra_author": "Maria Torrente", | 22 | "extra_author": "Maria Torrente", | ||
23 | "orcid": "" | 23 | "orcid": "" | ||
24 | }, | 24 | }, | ||
25 | { | 25 | { | ||
26 | "extra_author": "Maria-Esther Vidal", | 26 | "extra_author": "Maria-Esther Vidal", | ||
27 | "orcid": "https://orcid.org/0000-0003-1160-8727" | 27 | "orcid": "https://orcid.org/0000-0003-1160-8727" | ||
28 | } | 28 | } | ||
29 | ], | 29 | ], | ||
30 | "extras": [ | 30 | "extras": [ | ||
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43 | "isopen": true, | 43 | "isopen": true, | ||
44 | "landing_page": "", | 44 | "landing_page": "", | ||
45 | "language": "English", | 45 | "language": "English", | ||
46 | "license_id": "cc-by", | 46 | "license_id": "cc-by", | ||
47 | "license_title": "Creative Commons Attribution", | 47 | "license_title": "Creative Commons Attribution", | ||
48 | "license_url": "http://www.opendefinition.org/licenses/cc-by", | 48 | "license_url": "http://www.opendefinition.org/licenses/cc-by", | ||
49 | "link_orkg": "", | 49 | "link_orkg": "", | ||
50 | "maintainer": "Disha Purohit", | 50 | "maintainer": "Disha Purohit", | ||
51 | "maintainer_email": "disha.purohit@tib.eu", | 51 | "maintainer_email": "disha.purohit@tib.eu", | ||
52 | "metadata_created": "2024-09-19T13:44:11.745534", | 52 | "metadata_created": "2024-09-19T13:44:11.745534", | ||
53 | "metadata_modified": "2024-10-01T15:34:25.021904", | 53 | "metadata_modified": "2024-10-01T15:34:25.021904", | ||
54 | "name": | 54 | "name": | ||
55 | -and-invalidated-symbolic-explanations-for-knowledge-graph-integrity", | 55 | -and-invalidated-symbolic-explanations-for-knowledge-graph-integrity", | ||
56 | "notes": "VISE represents a novel hybrid strategy that integrates | 56 | "notes": "VISE represents a novel hybrid strategy that integrates | ||
57 | symbolic learning, constraint validation, and numerical learning | 57 | symbolic learning, constraint validation, and numerical learning | ||
58 | approaches. VISE employs KGE to capture implicit information and | 58 | approaches. VISE employs KGE to capture implicit information and | ||
59 | represent negation in KGs, thereby enhancing the prediction | 59 | represent negation in KGs, thereby enhancing the prediction | ||
60 | performance of numerical models. The experimental results demonstrate | 60 | performance of numerical models. The experimental results demonstrate | ||
61 | the efficacy of this hybrid technique, which effectively integrates | 61 | the efficacy of this hybrid technique, which effectively integrates | ||
62 | the strengths of symbolic, numerical, and constraint validation | 62 | the strengths of symbolic, numerical, and constraint validation | ||
63 | paradigms.\r\n\r\nThis collection includes all the data necessary to | 63 | paradigms.\r\n\r\nThis collection includes all the data necessary to | ||
64 | reproduce the results from the experimental evaluation of VISE at | 64 | reproduce the results from the experimental evaluation of VISE at | ||
65 | EXPLIMED @ ECAI'24. The data is an anonymized synthetic lung cancer | 65 | EXPLIMED @ ECAI'24. The data is an anonymized synthetic lung cancer | ||
66 | benchmark that comprises clinical data extracted from heterogeneous | 66 | benchmark that comprises clinical data extracted from heterogeneous | ||
67 | sources such as publications, clinical trials, and clinical records | 67 | sources such as publications, clinical trials, and clinical records | ||
68 | representing patients diagnosed with lung cancer. We evaluate the VISE | 68 | representing patients diagnosed with lung cancer. We evaluate the VISE | ||
69 | approach on three anonymized Lung Cancer KGs: | 69 | approach on three anonymized Lung Cancer KGs: | ||
70 | LC-\ud835\udc3e\ud835\udc3a1, LC-\ud835\udc3e\ud835\udc3a2,and | 70 | LC-\ud835\udc3e\ud835\udc3a1, LC-\ud835\udc3e\ud835\udc3a2,and | ||
71 | LC-\ud835\udc3e\ud835\udc3a3.\r\n\r\nThe collection comprises nine | 71 | LC-\ud835\udc3e\ud835\udc3a3.\r\n\r\nThe collection comprises nine | ||
72 | data sets of three different sizes:\r\n\r\n- LC Knowledge Graph 1 | 72 | data sets of three different sizes:\r\n\r\n- LC Knowledge Graph 1 | ||
73 | (LC-KG1) models 29 lung cancer patients\r\n- LC Knowledge Graph 2 | 73 | (LC-KG1) models 29 lung cancer patients\r\n- LC Knowledge Graph 2 | ||
74 | (LC-KG2) models 203 lung cancer patients\r\n- LC Knowledge Graph 3 | 74 | (LC-KG2) models 203 lung cancer patients\r\n- LC Knowledge Graph 3 | ||
75 | (LC-KG3) models 319 lung cancer patients\r\n\r\nThree distinct KGs of | 75 | (LC-KG3) models 319 lung cancer patients\r\n\r\nThree distinct KGs of | ||
76 | different sizes are available, each with its own characteristics. | 76 | different sizes are available, each with its own characteristics. | ||
77 | \r\n\r\n- \"Original KG\": The original KG comprises of anonymized | 77 | \r\n\r\n- \"Original KG\": The original KG comprises of anonymized | ||
78 | lung cancer patients with different medical characteristics. \r\n- | 78 | lung cancer patients with different medical characteristics. \r\n- | ||
79 | \"Enriched KG\": Utilizes an inductive learning technique of KG | 79 | \"Enriched KG\": Utilizes an inductive learning technique of KG | ||
80 | completion through self-supervised symbolic learning over the original | 80 | completion through self-supervised symbolic learning over the original | ||
81 | KG. \r\n- \"Transformed KG\": Denotes a transformation of the KG | 81 | KG. \r\n- \"Transformed KG\": Denotes a transformation of the KG | ||
82 | depending on SHACL shapes evaluated across the enriched KGs. This | 82 | depending on SHACL shapes evaluated across the enriched KGs. This | ||
83 | procedure is used to determine the validity of the data. \r\n\r\nVISE | 83 | procedure is used to determine the validity of the data. \r\n\r\nVISE | ||
84 | is also evaluated with KGs comprising 1242 lung cancer patients | 84 | is also evaluated with KGs comprising 1242 lung cancer patients | ||
85 | (LungCancer-OriginalKG, LungCancer-EnrichedKG, and | 85 | (LungCancer-OriginalKG, LungCancer-EnrichedKG, and | ||
86 | LungCancer-TransformedKG).\r\n", | 86 | LungCancer-TransformedKG).\r\n", | ||
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88 | "num_tags": 2, | 88 | "num_tags": 2, | ||
89 | "orcid": "https://orcid.org/0000-0002-1442-335X", | 89 | "orcid": "https://orcid.org/0000-0002-1442-335X", | ||
90 | "organization": { | 90 | "organization": { | ||
91 | "approval_status": "approved", | 91 | "approval_status": "approved", | ||
92 | "created": "2017-11-23T17:30:37.757128", | 92 | "created": "2017-11-23T17:30:37.757128", | ||
93 | "description": "The German National Library of Science and | 93 | "description": "The German National Library of Science and | ||
94 | Technology, abbreviated TIB, is the national library of the Federal | 94 | Technology, abbreviated TIB, is the national library of the Federal | ||
95 | Republic of Germany for all fields of engineering, technology, and the | 95 | Republic of Germany for all fields of engineering, technology, and the | ||
96 | natural sciences.", | 96 | natural sciences.", | ||
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249 | { | 249 | { | ||
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259 | "name": "Symbolic Learning", | 259 | "name": "Symbolic Learning", | ||
260 | "state": "active", | 260 | "state": "active", | ||
261 | "vocabulary_id": null | 261 | "vocabulary_id": null | ||
262 | } | 262 | } | ||
263 | ], | 263 | ], | ||
264 | "temporal_resolution": "", | 264 | "temporal_resolution": "", | ||
265 | "title": "VISE: Validated and Invalidated Symbolic Explanations for | 265 | "title": "VISE: Validated and Invalidated Symbolic Explanations for | ||
266 | Knowledge Graph Integrity", | 266 | Knowledge Graph Integrity", | ||
267 | "type": "dataset", | 267 | "type": "dataset", | ||
268 | "url": "https://github.com/SDM-TIB/VISE?tab=readme-ov-file", | 268 | "url": "https://github.com/SDM-TIB/VISE?tab=readme-ov-file", | ||
269 | "version": "", | 269 | "version": "", | ||
270 | "version_note": "" | 270 | "version_note": "" | ||
271 | } | 271 | } |