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f | 1 | { | f | 1 | { |
2 | "author": "Toulany, Nikan", | 2 | "author": "Toulany, Nikan", | ||
3 | "author_email": "", | 3 | "author_email": "", | ||
4 | "creator_user_id": "17755db4-395a-4b3b-ac09-e8e3484ca700", | 4 | "creator_user_id": "17755db4-395a-4b3b-ac09-e8e3484ca700", | ||
5 | "doi": "10.48606/50", | 5 | "doi": "10.48606/50", | ||
6 | "doi_date_published": "2023", | 6 | "doi_date_published": "2023", | ||
7 | "doi_publisher": "", | 7 | "doi_publisher": "", | ||
8 | "doi_status": "True", | 8 | "doi_status": "True", | ||
9 | "groups": [], | 9 | "groups": [], | ||
10 | "id": "dc7be277-653e-47a2-b594-1bd57ddaa4f8", | 10 | "id": "dc7be277-653e-47a2-b594-1bd57ddaa4f8", | ||
11 | "isopen": false, | 11 | "isopen": false, | ||
12 | "license_id": "CC BY 4.0 Attribution", | 12 | "license_id": "CC BY 4.0 Attribution", | ||
13 | "license_title": "CC BY 4.0 Attribution", | 13 | "license_title": "CC BY 4.0 Attribution", | ||
14 | "metadata_created": "2023-05-02T07:10:12.143895", | 14 | "metadata_created": "2023-05-02T07:10:12.143895", | ||
t | 15 | "metadata_modified": "2023-08-04T08:53:07.507711", | t | 15 | "metadata_modified": "2023-08-04T09:03:48.893459", |
16 | "name": "rdr-doi-10-48606-50", | 16 | "name": "rdr-doi-10-48606-50", | ||
17 | "notes": "Abstract: This is the data repository for training and | 17 | "notes": "Abstract: This is the data repository for training and | ||
18 | testing the Twin Network. The imaging data repositories are divided | 18 | testing the Twin Network. The imaging data repositories are divided | ||
19 | into several packages based on independent experiments. The data | 19 | into several packages based on independent experiments. The data | ||
20 | comprises bright-field time-lapse images of zebrafish embryos acquired | 20 | comprises bright-field time-lapse images of zebrafish embryos acquired | ||
21 | in multiple batches within multi-well plates using an Acquifer Imaging | 21 | in multiple batches within multi-well plates using an Acquifer Imaging | ||
22 | Machine. Individual embryo segments were identified and extracted | 22 | Machine. Individual embryo segments were identified and extracted | ||
23 | using a trained neural network for object detection. Within these | 23 | using a trained neural network for object detection. Within these | ||
24 | experiment folders, data are organized by microscope position and | 24 | experiment folders, data are organized by microscope position and | ||
25 | embryo number.", | 25 | embryo number.", | ||
26 | "num_resources": 0, | 26 | "num_resources": 0, | ||
27 | "num_tags": 9, | 27 | "num_tags": 9, | ||
28 | "orcid": "0000-0003-3505-7325", | 28 | "orcid": "0000-0003-3505-7325", | ||
29 | "organization": { | 29 | "organization": { | ||
30 | "approval_status": "approved", | 30 | "approval_status": "approved", | ||
31 | "created": "2023-01-12T13:30:23.238233", | 31 | "created": "2023-01-12T13:30:23.238233", | ||
32 | "description": "RADAR (Research Data Repository) is a | 32 | "description": "RADAR (Research Data Repository) is a | ||
33 | cross-disciplinary repository for archiving and publishing research | 33 | cross-disciplinary repository for archiving and publishing research | ||
34 | data from completed scientific studies and projects. The focus is on | 34 | data from completed scientific studies and projects. The focus is on | ||
35 | research data from subjects that do not yet have their own | 35 | research data from subjects that do not yet have their own | ||
36 | discipline-specific infrastructures for research data management. ", | 36 | discipline-specific infrastructures for research data management. ", | ||
37 | "id": "013c89a9-383c-4200-8baa-0f78bf1d91f9", | 37 | "id": "013c89a9-383c-4200-8baa-0f78bf1d91f9", | ||
38 | "image_url": "radar-logo.svg", | 38 | "image_url": "radar-logo.svg", | ||
39 | "is_organization": true, | 39 | "is_organization": true, | ||
40 | "name": "radar", | 40 | "name": "radar", | ||
41 | "state": "active", | 41 | "state": "active", | ||
42 | "title": "RADAR", | 42 | "title": "RADAR", | ||
43 | "type": "organization" | 43 | "type": "organization" | ||
44 | }, | 44 | }, | ||
45 | "owner_org": "013c89a9-383c-4200-8baa-0f78bf1d91f9", | 45 | "owner_org": "013c89a9-383c-4200-8baa-0f78bf1d91f9", | ||
46 | "private": false, | 46 | "private": false, | ||
47 | "production_year": "2020-2023", | 47 | "production_year": "2020-2023", | ||
48 | "publication_year": "2023", | 48 | "publication_year": "2023", | ||
49 | "publishers": [ | 49 | "publishers": [ | ||
50 | { | 50 | { | ||
51 | "publisher": "University of Konstanz" | 51 | "publisher": "University of Konstanz" | ||
52 | } | 52 | } | ||
53 | ], | 53 | ], | ||
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208 | "relation_type": "HasPart" | 208 | "relation_type": "HasPart" | ||
209 | }, | 209 | }, | ||
210 | { | 210 | { | ||
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213 | "relation_type": "HasPart" | 213 | "relation_type": "HasPart" | ||
214 | }, | 214 | }, | ||
215 | { | 215 | { | ||
216 | "identifier": "10.48606/91", | 216 | "identifier": "10.48606/91", | ||
217 | "identifier_type": "DOI", | 217 | "identifier_type": "DOI", | ||
218 | "relation_type": "HasPart" | 218 | "relation_type": "HasPart" | ||
219 | }, | 219 | }, | ||
220 | { | 220 | { | ||
221 | "identifier": "10.48606/92", | 221 | "identifier": "10.48606/92", | ||
222 | "identifier_type": "DOI", | 222 | "identifier_type": "DOI", | ||
223 | "relation_type": "HasPart" | 223 | "relation_type": "HasPart" | ||
224 | } | 224 | } | ||
225 | ], | 225 | ], | ||
226 | "relationships_as_object": [], | 226 | "relationships_as_object": [], | ||
227 | "relationships_as_subject": [], | 227 | "relationships_as_subject": [], | ||
228 | "repository_name": "RADAR (Research Data Repository)", | 228 | "repository_name": "RADAR (Research Data Repository)", | ||
229 | "resource_type": "Dataset - Overview of the Twin Network data | 229 | "resource_type": "Dataset - Overview of the Twin Network data | ||
230 | packages.", | 230 | packages.", | ||
231 | "resources": [], | 231 | "resources": [], | ||
232 | "services_used_list": "", | 232 | "services_used_list": "", | ||
233 | "source_metadata_created": "2023", | 233 | "source_metadata_created": "2023", | ||
234 | "source_metadata_modified": "", | 234 | "source_metadata_modified": "", | ||
235 | "state": "active", | 235 | "state": "active", | ||
236 | "subject_areas": [ | 236 | "subject_areas": [ | ||
237 | { | 237 | { | ||
238 | "subject_area_additional": "", | 238 | "subject_area_additional": "", | ||
239 | "subject_area_name": "Biology" | 239 | "subject_area_name": "Biology" | ||
240 | } | 240 | } | ||
241 | ], | 241 | ], | ||
242 | "tags": [ | 242 | "tags": [ | ||
243 | { | 243 | { | ||
244 | "display_name": "Twin Network", | 244 | "display_name": "Twin Network", | ||
245 | "id": "577497b6-6d97-4c41-b0b2-dbaefb6702eb", | 245 | "id": "577497b6-6d97-4c41-b0b2-dbaefb6702eb", | ||
246 | "name": "Twin Network", | 246 | "name": "Twin Network", | ||
247 | "state": "active", | 247 | "state": "active", | ||
248 | "vocabulary_id": null | 248 | "vocabulary_id": null | ||
249 | }, | 249 | }, | ||
250 | { | 250 | { | ||
251 | "display_name": "TwinNet", | 251 | "display_name": "TwinNet", | ||
252 | "id": "1ba52854-ef13-464f-ab07-2e57070491c3", | 252 | "id": "1ba52854-ef13-464f-ab07-2e57070491c3", | ||
253 | "name": "TwinNet", | 253 | "name": "TwinNet", | ||
254 | "state": "active", | 254 | "state": "active", | ||
255 | "vocabulary_id": null | 255 | "vocabulary_id": null | ||
256 | }, | 256 | }, | ||
257 | { | 257 | { | ||
258 | "display_name": "computational biology", | 258 | "display_name": "computational biology", | ||
259 | "id": "d65dd4ed-b2a9-41b0-9d19-cb77b1965ff1", | 259 | "id": "d65dd4ed-b2a9-41b0-9d19-cb77b1965ff1", | ||
260 | "name": "computational biology", | 260 | "name": "computational biology", | ||
261 | "state": "active", | 261 | "state": "active", | ||
262 | "vocabulary_id": null | 262 | "vocabulary_id": null | ||
263 | }, | 263 | }, | ||
264 | { | 264 | { | ||
265 | "display_name": "deep learning", | 265 | "display_name": "deep learning", | ||
266 | "id": "19e41883-3799-4184-9e0e-26c95795b119", | 266 | "id": "19e41883-3799-4184-9e0e-26c95795b119", | ||
267 | "name": "deep learning", | 267 | "name": "deep learning", | ||
268 | "state": "active", | 268 | "state": "active", | ||
269 | "vocabulary_id": null | 269 | "vocabulary_id": null | ||
270 | }, | 270 | }, | ||
271 | { | 271 | { | ||
272 | "display_name": "developmental biology", | 272 | "display_name": "developmental biology", | ||
273 | "id": "4acec762-54a0-4ecf-884d-e65d76375c46", | 273 | "id": "4acec762-54a0-4ecf-884d-e65d76375c46", | ||
274 | "name": "developmental biology", | 274 | "name": "developmental biology", | ||
275 | "state": "active", | 275 | "state": "active", | ||
276 | "vocabulary_id": null | 276 | "vocabulary_id": null | ||
277 | }, | 277 | }, | ||
278 | { | 278 | { | ||
279 | "display_name": "embryogenesis", | 279 | "display_name": "embryogenesis", | ||
280 | "id": "b66e6284-edc5-4f9b-97c8-4699c36c7352", | 280 | "id": "b66e6284-edc5-4f9b-97c8-4699c36c7352", | ||
281 | "name": "embryogenesis", | 281 | "name": "embryogenesis", | ||
282 | "state": "active", | 282 | "state": "active", | ||
283 | "vocabulary_id": null | 283 | "vocabulary_id": null | ||
284 | }, | 284 | }, | ||
285 | { | 285 | { | ||
286 | "display_name": "high-throughput", | 286 | "display_name": "high-throughput", | ||
287 | "id": "4c7004f2-f511-4233-af6a-3c2f8674670b", | 287 | "id": "4c7004f2-f511-4233-af6a-3c2f8674670b", | ||
288 | "name": "high-throughput", | 288 | "name": "high-throughput", | ||
289 | "state": "active", | 289 | "state": "active", | ||
290 | "vocabulary_id": null | 290 | "vocabulary_id": null | ||
291 | }, | 291 | }, | ||
292 | { | 292 | { | ||
293 | "display_name": "machine learning", | 293 | "display_name": "machine learning", | ||
294 | "id": "9e42784b-6ee7-47e8-a69a-28b8c510212b", | 294 | "id": "9e42784b-6ee7-47e8-a69a-28b8c510212b", | ||
295 | "name": "machine learning", | 295 | "name": "machine learning", | ||
296 | "state": "active", | 296 | "state": "active", | ||
297 | "vocabulary_id": null | 297 | "vocabulary_id": null | ||
298 | }, | 298 | }, | ||
299 | { | 299 | { | ||
300 | "display_name": "zebrafish", | 300 | "display_name": "zebrafish", | ||
301 | "id": "98db8ebb-7bdf-40cb-adc7-4b6ad2ed20f7", | 301 | "id": "98db8ebb-7bdf-40cb-adc7-4b6ad2ed20f7", | ||
302 | "name": "zebrafish", | 302 | "name": "zebrafish", | ||
303 | "state": "active", | 303 | "state": "active", | ||
304 | "vocabulary_id": null | 304 | "vocabulary_id": null | ||
305 | } | 305 | } | ||
306 | ], | 306 | ], | ||
307 | "title": "Datasets for \"uncovering developmental time and tempo | 307 | "title": "Datasets for \"uncovering developmental time and tempo | ||
308 | using deep learning\"", | 308 | using deep learning\"", | ||
309 | "type": "vdataset", | 309 | "type": "vdataset", | ||
310 | "url": "https://doi.org/10.48606/50" | 310 | "url": "https://doi.org/10.48606/50" | ||
311 | } | 311 | } |