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207 results for “Mora”

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zenodo48/100

Data access for figures of Chen, Ginoux, Wyart, Mora & Walczak

<p>README:&nbsp;</p> <p><br> Pandas DataFrame</p> <p>to load:&nbsp;<br> import pickle<br> pickle_filename = &#39;YOUR_DATA_PATH/df_name.pkl&#39; &nbsp;# change accordingly<br> with open(pickle_filename, &#39;rb&#39;) as pickle_in:<br> &nbsp; &nbsp; &nbsp;df_name = pickle.load(pickle_in)</p> <p><br> Motorneuron data:<br> Fish 3 Trial 1 and Fish 5 Trial 2 for Figure 3.<br> Fish 5 Trial 2 for figure 4.</p> <p>Columns:<br> - Fish: fish index<br> - Trial: trial index<br> - fluo: fluorescence traces [n_cells x n_timesteps]<br> - fluo_type: &#39;dff&#39; or &#39;f_smooth&#39;, respectively before and after smoothing procedure<br> - n_cells: number of cells in the plane (only those kept for analysis, &quot;bad&quot; cells removed)<br> - mid: middle cell, to split left vs right neurons (left until index mid-1, right from index mid and on)<br> - cell_centers: x and y position of the cell center [n_cells x 2]<br> - multivariate: boolean to indicate bivariate (False) or multivariate (True) GC<br> - GC: Granger causality matrix results [n_cells x n_cells]<br> - GC_sig: Granger causality matrix results, significant with original threshold (where Fstat &gt; threshold_F) [n_cells x n_cells]<br> - GC_sig_new_thresh: Granger causality matrix results, significant with new threshold (where Fstat &gt; new_threshold_F) [n_cells x n_cells]<br> - Fstat: F-statistics matrix [n_cells x n_cells]<br> - threshold_F: original threshold for the F-statistics significance<br> - new_threshold_F: new threshold for the F-statistics after the whole pipeline is applied</p> <p><br> Hindbrain data<br> Fish 6 Trial 07</p> <p>Columns:<br> - fluo: fluorescence traces [n_cells x n_timesteps]<br> - cell_centers: x and y position of the cell center [n_cells x 2]<br> - background: plane background for plotting [249 x 512]<br> - n_cells: number of cells in the plane<br> - tail_angle: array of angle of the tail [75000,] - 75000 timesteps: higher frequency than calcium imaging recording<br> - tail_angle_regressor: tail angle convolved to calcium decay function [75000,]&nbsp;<br> - is_swim: boolean array whether each cell in correlated to swim activity (True if pearson correlation between cell&#39;s fluorescence trace and tail_angle_regressor &gt; 0.6) [n_cells,]<br> - swim_neurons: indices of swim-correlated neurons [n_swim_cells,]<br> - medial_neurons: indices of swim-correlated neurons [n_medial_cells,]<br> - SNR: signal-to-noise ratio for each cell [n_cells,]</p> <p>- BV_GC_medial: original bivariate (BV) Granger causality results matrix [n_medial_cells,n_medial_cells]<br> - BV_Fstat_medial: original BV F-statistics matrix [n_medial_cells,n_medial_cells]<br> - BV_threshold_F_ori: original threshold for the BV F-statistics significance<br> - BV_threshold_F_new_mat_medial: new threshold customized for each pair of neurons (BV) [n_medial_cells,n_medial_cells]<br> - BV_Fstat_normalized_medial: new BV F-statistics matrix normalized by customized threshold [n_medial_cells,n_medial_cells]<br> - BV_GC_normalized_medial: new BV GC results matrix normalized by customized threshold [n_medial_cells,n_medial_cells]</p> <p>- MV_GC_medial: original multivariate (MV) Granger causality results matrix [n_medial_cells,n_medial_cells]<br> - MV_Fstat_medial: original MV F-statistics matrix [n_medial_cells,n_medial_cells]<br> - MV_threshold_F_ori_medial: original threshold for the MV F-statistics significance<br> - MV_threshold_F_new_mat_medial: new MV F-statistics matrix normalized by customized threshold [n_medial_cells,n_medial_cells]<br> - MV_Fstat_normalized_medial: new MV F-statistics matrix normalized by customized threshold [n_medial_cells,n_medial_cells]<br> - MV_GC_normalized_medial: new MV GC results matrix normalized by customized threshold [n_medial_cells,n_medial_cells]</p>

opencc-by-4.0Jun 2022View details →
zenodo44/100

Giacomo Mora (m2185)

<b>-- <a href="https://doi.org/10.5281/zenodo.11582199">Documentation</a> --</b><br><br><u>Name</u>: Giacomo Mora<br><u>musiXplora-ID</u>: m2185<br><u>musiXplora-URI</u>: <a href="https://musixplora.de/mxp/m2185">https://musixplora.de/mxp/m2185</a><br><u>Gender</u>: m<br><u>First Mentioned</u>: 1701<br><u>Sectors</u>: Instrumentenbau<br><u>Professions (Musical)</u>: Geigenbauer<br><u>Other Places of Activity</u>: Bagolino<br><br><br><u>Titel/Medien:</u><br><table><tbody><tr><th>Role</th><th>Sigel</th><th>Title</th><th>mXp-ID</th></tr><tr><td>Related</td><td>Lütgendorff 1922</td><td>Die Geigen- und Lautenmacher vom Mittelalter bis zur Gegenwart. 2 Bände. Lüt2</td><td><a href="https://musixplora.de/mxp/5002059">5002059</a></td></tr></tbody></table><br><br><u>Changelog</u>:<br>&nbsp;&nbsp;- v0.0.1: Initial Upload.<br>

opencc-by-4.0Jun 2024View details →
zenodo40/100

Fig. 526. Gravel extraction from river beds. A in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 526. Gravel extraction from river beds. A: Seymareh River, B: Kangir River, C: Tajan River, D: Balekhlo chay River.

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 529. Kouhrang Tunnel, which discharge annually 320 million m3 in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 529. Kouhrang Tunnel, which discharge annually 320 million m3 water annually from the Tigris to Esfahan basin.

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 477 in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 477. Aphanius furcatus (above: male, below: female). Photograph from Shur River, Makran basin (Photographed by A. Teimori).

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 522. A in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 522. A local fish market in Shooshtar City, February 9, 2018; A: Labeo rohito, B: The red arrow shows L. rohito specimens.

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 484 in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 484. Aphanius shirini (above: male, below: female). Photograph from Khosroshirin spring-stream, Kor basin (Photographed by Z. Gholami).

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 490 in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 490. Aphanius vladykovi (above: male, below: female). Photograph from Choghakhor Wetland, Tigris basin.

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 503 in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 503. Mugil cf. cephalus. Photograph from Mond River estuaries, Persis basin (Photographed by F. Koniyeh).

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 326 in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 326. Oxynoemacheilus tongiorgii, recorded from Kor River, Kor basin (Photographed by: H. R. Esmaeili).

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 527 in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 527. Traditional qanat systems (A) that, unlike modern pumps (B), protect habitats, especially in drier regions. Segonbadan qanat, close to Faroj City.

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 263 in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 263. Scardinius erythrophthalmus. Photograph from Bug, Ukraine (Photographed by G. Chernilevsky).

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 525. Water extraction for agricultural use. A in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 525. Water extraction for agricultural use. A: Qarasu River; this locality is the natural habitat and spawning site of some rare species such as Sabanejewia aurata. B: Karun River.

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 474 in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 474. Aphanius darabensis (above: male, below: female). Photograph from Golabi spring, Hormuz basin.

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 431 in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 431. Knipowitschia caucasica. Photograph from Gorgan bay, Caspian Sea basin (Photographed by A. Bahalke).

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 217 in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 217. Alburnoides samiii (up: male, down: female). Photograph from Sefidrud River, Caspian Sea basin.

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 213 in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 213. Alburnoides petru Bǎnǎrescui (holotype), caught at Qasemlou Chay River, Urmia basin (Photographed by N. Bogutskaya and B. Coad).

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 249 in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 249. Leucaspius delineatus. Photograph from Anzali Wetland, Caspian Sea basin (Photographed by K. Abbasi).

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 472 in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 472. Aphanius arakensis (above: male, below: female). Photograph from a natural pond near Arak city, Namak basin (Photographed by A. Teimori).

opencc-by-4.0Jun 2020View details →
zenodo40/100

Fig. 197 in Fig. 4 in Fig. 4 in Fig. 3 in Fig. 21. Sesarmops mora n in Paralbunea dayriti

Fig. 197. Acanthobrama urmianus. Photograph from Ghader chay River, Urmia Lake basin (Photographed by K. Abbasi).

opencc-by-4.0Jun 2020View details →

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