Description: <div>Foss C, Burford L. 2019. New England Rusty Blackbird Project (Project 252). Data accessed from Motus Wildlife Tracking System, Birds Canada. Available from <a target="_blank" href="https://motus.org">https://motus.org</a> (accessed February 7, 2025).</div><div> </div><div>Grinde A. 2018–2021. Lake Superior Migration (Project 212). Data accessed from Motus Wildlife Tracking System, Birds Canada. Available from <a target="_blank" href="https://motus.org">https://motus.org</a> (accessed February 7, 2025).</div><div> </div><div>Grinde AR, Bracey A, Kolbe S. 2021. Mapping Avian Movement in Minnesota. Report. University of Minnesota Duluth. Available from <a target="_blank" href="http://conservancy.umn.edu/handle/11299/224855">http://conservancy.umn.edu/handle/11299/224855</a> (accessed October 11, 2021).</div><div> </div><div>Hengst NM. 2021. Movements and Habitat Relationships of Virginia Rails and Soras within Impounded Coastal Wetlands of Northwest Ohio. PhD Thesis. The Ohio State University. Available from <a target="_blank" href="https://etd.ohiolink.edu/acprod/odb_etd/etd/r/1501/10?clear=10&p10_accession_num=osu1620636986833307">https://etd.ohiolink.edu/acprod/odb_etd/etd/r/1501/10?clear=10&p10_accession_num=osu1620636986833307</a>.</div><div> </div><div>Johnson JA, Matsuoka SM, Tessler DF, Greenberg R, Fox JW. 2012. Identifying migratory pathways used by Rusty Blackbirds breeding in southcentral Alaska. The Wilson Journal of Ornithology 124:698–703. Available from <a target="_blank" href="https://doi.org/10.1676/1559-4491-124.4.698">https://doi.org/10.1676/1559-4491-124.4.698</a> (accessed April 12, 2021).</div><div> </div><div>Kearns LJ. 2018. Multiscale Movements of a Threatened Population of Black-crowned Night-Herons in Lake Erie, Ohio Using Satellite and Automated Telemetry. Page 42. Available from <a target="_blank" href="https://core.ac.uk/download/pdf/223094155.pdf#page=50">https://core.ac.uk/download/pdf/223094155.pdf#page=50</a>.</div><div> </div><div>Korpi ZO, Matthews SN, Shumar MB, McDermott ME, Russell D, DeGroote LW, Jacob R, Shieldcastle M, Tonra CM. 2025. Spatial and species-specific variation in lake-crossing behavior in the Great Lakes region influences collision risk with offshore wind development. Ornithological <a href target="_blank">Applications:duaf019</a>. Available from <a target="_blank" href="https://academic.oup.com/condor/advance-article/doi/10.1093/ornithapp/duaf019/8052910">https://academic.oup.com/condor/advance-article/doi/10.1093/ornithapp/duaf019/8052910</a> (accessed March 11, 2025).</div><div> </div><div>Korpi ZO. 2024. Lake-crossing behavior of migratory songbirds: Assessing potential collision risk with offshore wind on Lake Erie. Ohio State University. Available from <a target="_blank" href="https://etd.ohiolink.edu/acprod/odb_etd/etd/r/1501/10?clear=10&p10_accession_num=osu1714751835522516">https://etd.ohiolink.edu/acprod/odb_etd/etd/r/1501/10?clear=10&p10_accession_num=osu1714751835522516</a>.</div><div> </div><div>Migratory Connectivity Project. 2019. MCP Rusty Blackbird Alberta, Alaska, and New Hampshire. Available from <a target="_blank" href="https://www.movebank.org/cms/webapp?gwt_fragment=page=studies,path=study613825248">https://www.movebank.org/cms/webapp?gwt_fragment=page=studies,path=study613825248</a> (accessed July 22, 2021).</div><div> </div><div>Tonra C. 2015–2021. Ohio State University (Project 64). Data accessed from Motus Wildlife Tracking System, Birds Canada. Available from <a target="_blank" href="https://motus.org">https://motus.org</a> (accessed February 7, 2025).</div><div> </div><div>Tremblay J, Foss C. 2017–2021. Migration connectivity of the Rusty Blackbird (Project 161). Data accessed from Motus Wildlife Tracking System, Birds Canada. Available from <a target="_blank" href="https://motus.org">https://motus.org</a> (accessed February 7, 2025).</div><div> </div><div>Tsuru BR. 2023. Post-breeding ecology in the Prothonotary Warbler: Evaluating trade-offs between breeding, molt, and migration phenology. The Ohio State University. Available from <a target="_blank" href="https://etd.ohiolink.edu/acprod/odb_etd/etd/r/1501/10?clear=10&p10_accession_num=osu1682064169949772">https://etd.ohiolink.edu/acprod/odb_etd/etd/r/1501/10?clear=10&p10_accession_num=osu1682064169949772</a> (accessed October 6, 2023).</div><div> </div><div>Walker J, Bégin-Marchand C, Terrigeol A, Therrien J-F, Côté P, Burford L, Foss CR, Tremblay JA. 2024. <i>Euphagus carolinus</i> (Rusty Blackbird) from two different breeding populations in northeastern North America exhibit chain migration yet use the same region for stopover. Ornithological <a href target="_blank">Applications:duae066</a>. Available from <a target="_blank" href="https://academic.oup.com/condor/advance-article/doi/10.1093/ornithapp/duae066/7930274">https://academic.oup.com/condor/advance-article/doi/10.1093/ornithapp/duae066/7930274</a> (accessed December 23, 2024).</div><div> </div><div>Wright JR, Powell LL, Tonra CM. 2018. Automated telemetry reveals staging behavior in a declining migratory passerine. The <a href target="_blank">Auk:461–476</a>. Available from <a target="_blank" href="http://www.bioone.org/doi/10.1642/AUK-17-219.1">http://www.bioone.org/doi/10.1642/AUK-17-219.1</a> (accessed April 26, 2018).</div>
Description: <div>Celis-Murillo A, Malorodova M, Nakash E. 2022. North American Bird Banding Dataset 1960-2022 retrieved 2022-07-14. U.S. Geological Survey, Eastern Ecological Science Center at the Patuxent Research Refuge. Available from <a href="https://www.usgs.gov/labs/bird-banding-laboratory/data" target="_blank">https://www.usgs.gov/labs/bird-banding-laboratory/data</a> (accessed November 30, 2022).</div><div><br /></div><div>Foss C, Burford L. 2019. New England Rusty Blackbird Project (Project 252). Data accessed from Motus Wildlife Tracking System, Birds Canada. Available from <a href="https://motus.org" target="_blank">https://motus.org</a> (accessed February 7, 2025).</div><div><br /></div><div>Grinde A. 2018–2021. Lake Superior Migration (Project 212). Data accessed from Motus Wildlife Tracking System, Birds Canada. Available from <a href="https://motus.org" target="_blank">https://motus.org</a> (accessed February 7, 2025).</div><div><br /></div><div>Grinde AR, Bracey A, Kolbe S. 2021. Mapping Avian Movement in Minnesota. Report. University of Minnesota Duluth. Available from <a href="http://conservancy.umn.edu/handle/11299/224855" target="_blank">http://conservancy.umn.edu/handle/11299/224855</a> (accessed October 11, 2021).</div><div><br /></div><div>Hengst NM. 2021. Movements and Habitat Relationships of Virginia Rails and Soras within Impounded Coastal Wetlands of Northwest Ohio. PhD Thesis. The Ohio State University. Available from <a href="https://etd.ohiolink.edu/acprod/odb_etd/etd/r/1501/10?clear=10&p10_accession_num=osu1620636986833307" target="_blank">https://etd.ohiolink.edu/acprod/odb_etd/etd/r/1501/10?clear=10&p10_accession_num=osu1620636986833307</a>.</div><div><br /></div><div>Johnson JA, Matsuoka SM, Tessler DF, Greenberg R, Fox JW. 2012. Identifying migratory pathways used by Rusty Blackbirds breeding in southcentral Alaska. The Wilson Journal of Ornithology 124:698–703. Available from <a href="https://doi.org/10.1676/1559-4491-124.4.698" target="_blank">https://doi.org/10.1676/1559-4491-124.4.698</a> (accessed April 12, 2021).</div><div><br /></div><div>Kearns LJ. 2018. Multiscale Movements of a Threatened Population of Black-crowned Night-Herons in Lake Erie, Ohio Using Satellite and Automated Telemetry. Page 42. Available from <a href="https://core.ac.uk/download/pdf/223094155.pdf#page=50" target="_blank">https://core.ac.uk/download/pdf/223094155.pdf#page=50</a>.</div><div><br /></div><div>Korpi ZO, Matthews SN, Shumar MB, McDermott ME, Russell D, DeGroote LW, Jacob R, Shieldcastle M, Tonra CM. 2025. Spatial and species-specific variation in lake-crossing behavior in the Great Lakes region influences collision risk with offshore wind development. Ornithological <a href="Applications:duaf019" target="_blank">Applications:duaf019</a>. Available from <a href="https://academic.oup.com/condor/advance-article/doi/10.1093/ornithapp/duaf019/8052910" target="_blank">https://academic.oup.com/condor/advance-article/doi/10.1093/ornithapp/duaf019/8052910</a> (accessed March 11, 2025).</div><div><br /></div><div>Korpi ZO. 2024. Lake-crossing behavior of migratory songbirds: Assessing potential collision risk with offshore wind on Lake Erie. Ohio State University. Available from <a href="https://etd.ohiolink.edu/acprod/odb_etd/etd/r/1501/10?clear=10&p10_accession_num=osu1714751835522516" target="_blank">https://etd.ohiolink.edu/acprod/odb_etd/etd/r/1501/10?clear=10&p10_accession_num=osu1714751835522516</a>.</div><div><br /></div><div>Migratory Connectivity Project. 2019. MCP Rusty Blackbird Alberta, Alaska, and New Hampshire. Available from <a href="https://www.movebank.org/cms/webapp?gwt_fragment=page=studies,path=study613825248" target="_blank">https://www.movebank.org/cms/webapp?gwt_fragment=page=studies,path=study613825248</a> (accessed July 22, 2021).</div><div><br /></div><div>Tonra C. 2015–2021. Ohio State University (Project 64). Data accessed from Motus Wildlife Tracking System, Birds Canada. Available from <a href="https://motus.org" target="_blank">https://motus.org</a> (accessed February 7, 2025).</div><div><br /></div><div>Tremblay J, Foss C. 2017–2021. Migration connectivity of the Rusty Blackbird (Project 161). Data accessed from Motus Wildlife Tracking System, Birds Canada. Available from <a href="https://motus.org" target="_blank">https://motus.org</a> (accessed February 7, 2025).</div><div><br /></div><div>Tsuru BR. 2023. Post-breeding ecology in the Prothonotary Warbler: Evaluating trade-offs between breeding, molt, and migration phenology. The Ohio State University. Available from <a href="https://etd.ohiolink.edu/acprod/odb_etd/etd/r/1501/10?clear=10&p10_accession_num=osu1682064169949772" target="_blank">https://etd.ohiolink.edu/acprod/odb_etd/etd/r/1501/10?clear=10&p10_accession_num=osu1682064169949772</a> (accessed October 6, 2023).</div><div><br /></div><div>U.S. Geological Survey. 2023. North American Bird Banding and Encounter Data 1914-1959. Available from <a href="https://www.usgs.gov/labs/bird-banding-laboratory/data" target="_blank">https://www.usgs.gov/labs/bird-banding-laboratory/data</a> (accessed January 23, 2023).</div><div><br /></div><div>Walker J, Bégin-Marchand C, Terrigeol A, Therrien J-F, Côté P, Burford L, Foss CR, Tremblay JA. 2024. <i>Euphagus carolinus</i> (Rusty Blackbird) from two different breeding populations in northeastern North America exhibit chain migration yet use the same region for stopover. Ornithological <a href="Applications:duae066" target="_blank">Applications:duae066</a>. Available from <a href="https://academic.oup.com/condor/advance-article/doi/10.1093/ornithapp/duae066/7930274" target="_blank">https://academic.oup.com/condor/advance-article/doi/10.1093/ornithapp/duae066/7930274</a> (accessed December 23, 2024).</div><div><br /></div><div>Walker J, Bégin-Marchand C, Terrigeol A, Therrien J-F, Côté P, Burford L, Foss CR, Tremblay JA. 2024. Euphagus carolinus (Rusty Blackbird) from two different breeding populations in northeastern North America exhibit chain migration yet use the same region for stopover. Ornithological Applications 127. Available from <a href="https://watermark.silverchair.com/duae066.pdf?token=AQECAHi208BE49Ooan9kkhW_Ercy7Dm3ZL_9Cf3qfKAc485ysgAAA3QwggNwBgkqhkiG9w0BBwagggNhMIIDXQIBADCCA1YGCSqGSIb3DQEHATAeBglghkgBZQMEAS4wEQQMXc1g9A6alZtAkrZrAgEQgIIDJ_yk9GPv2Bng7w4GhyyYo0AsyKGyq4QAgk0wtjHZ-mPmDT4_1fypYULS06YGj7ZBxhN5LYbqfGni6d3Hreu7mNAtRBamPrTJoiuje5IokrywkLyQqcms1mUDQ2vgQ-mc8ze0GL5Y6PYkrV9L62NoMI1IoLXv4NFfqOBg9vP5EYfk497WJ06wU5IqMZRfeJqAgiWcskkrav-gdOXdT_lsQTQHzHNUNpeO5TwHwKdojoBDiZ5mbZSuNBTNYi7aMAPuAlAqXXNzAJareGVoQ_nAlSC0RFeu01ovLauaoqibAAvJWjy4E7QQfKdV-fNRD1bG56Njq13I41gykamCC6NULqNF5NZgOVZACyc1FZNeyrA03bBbZFO08HyVZ6EJexbYvp79-nHUcelOqBx2Kq3NQlghBYN_EgpRqEa378zZwuzuqPUAYek5SMXU2IyCnufsIKP3vl80TnKsW0TTTFI2F0FFh2LBc6CRj4uiJfrSN0SwmkanQRoybTuHt8Fvk9TQrvZloUhBKuz249X1sPWtfUySjDeGUhZg8H1MvY6f26g6Ts0C078IZld5vsZ9zXGKhpBEu6Y9ajPOZeaXfXhSqdNKQMAzIpRqrf80E_gY-lXioc6FivOCZxK3bRCdRU_3fwSXVfS9j-qxVP4LKA9iRQCyPBdmqJXGkSYbUAxoeFhVDdZ3q2qAPQHaxI-SA2sm4XtAxRhG8uo9A3RbcZPOesiUEL_Tj-JyMj_b1biW1kuKk5CQPERMyoz1NFZ4O4AHP5pqX81Eb-eK2VOfgc4bRAYNkwJ0iQUYVNH3AswFlLSp15KSpKCgY0_YgAqQ80ynOntinoFBbRUIJX1gaqZT7bCWno2bNAVGb1e0Qb8QiB99bhvMuXp5_0DnYNPc6DxV00G9-t85JKADHLbmON1JCCqAKEv_ySxK9Ji8f_LePxI9PrWSRmenpB8NDW7tTB2lOXdmrqnk9O9khGucJB1N-rrQZrR8itfvdyrgDEU8t1Y7x4Uv-_daRFS5pddgGShQL81RFkbBhFl2Rhm9gy-1GxQTeOhrLlm1YWGE0v5SKsqk2l_8uSHUXg" target="_blank">https://watermark.silverchair.com/duae066.pdf?token=AQECAHi208BE49Ooan9kkhW_Ercy7Dm3ZL_9Cf3qfKAc485ysgAAA3QwggNwBgkqhkiG9w0BBwagggNhMIIDXQIBADCCA1YGCSqGSIb3DQEHATAeBglghkgBZQMEAS4wEQQMXc1g9A6alZtAkrZrAgEQgIIDJ_yk9GPv2Bng7w4GhyyYo0AsyKGyq4QAgk0wtjHZ-mPmDT4_1fypYULS06YGj7ZBxhN5LYbqfGni6d3Hreu7mNAtRBamPrTJoiuje5IokrywkLyQqcms1mUDQ2vgQ-mc8ze0GL5Y6PYkrV9L62NoMI1IoLXv4NFfqOBg9vP5EYfk497WJ06wU5IqMZRfeJqAgiWcskkrav-gdOXdT_lsQTQHzHNUNpeO5TwHwKdojoBDiZ5mbZSuNBTNYi7aMAPuAlAqXXNzAJareGVoQ_nAlSC0RFeu01ovLauaoqibAAvJWjy4E7QQfKdV-fNRD1bG56Njq13I41gykamCC6NULqNF5NZgOVZACyc1FZNeyrA03bBbZFO08HyVZ6EJexbYvp79-nHUcelOqBx2Kq3NQlghBYN_EgpRqEa378zZwuzuqPUAYek5SMXU2IyCnufsIKP3vl80TnKsW0TTTFI2F0FFh2LBc6CRj4uiJfrSN0SwmkanQRoybTuHt8Fvk9TQrvZloUhBKuz249X1sPWtfUySjDeGUhZg8H1MvY6f26g6Ts0C078IZld5vsZ9zXGKhpBEu6Y9ajPOZeaXfXhSqdNKQMAzIpRqrf80E_gY-lXioc6FivOCZxK3bRCdRU_3fwSXVfS9j-qxVP4LKA9iRQCyPBdmqJXGkSYbUAxoeFhVDdZ3q2qAPQHaxI-SA2sm4XtAxRhG8uo9A3RbcZPOesiUEL_Tj-JyMj_b1biW1kuKk5CQPERMyoz1NFZ4O4AHP5pqX81Eb-eK2VOfgc4bRAYNkwJ0iQUYVNH3AswFlLSp15KSpKCgY0_YgAqQ80ynOntinoFBbRUIJX1gaqZT7bCWno2bNAVGb1e0Qb8QiB99bhvMuXp5_0DnYNPc6DxV00G9-t85JKADHLbmON1JCCqAKEv_ySxK9Ji8f_LePxI9PrWSRmenpB8NDW7tTB2lOXdmrqnk9O9khGucJB1N-rrQZrR8itfvdyrgDEU8t1Y7x4Uv-_daRFS5pddgGShQL81RFkbBhFl2Rhm9gy-1GxQTeOhrLlm1YWGE0v5SKsqk2l_8uSHUXg</a>.</div><div><br /></div><div>Wright JR, Powell LL, Tonra CM. 2018. Automated telemetry reveals staging behavior in a declining migratory passerine. The <a href="Auk:461–476" target="_blank">Auk:461–476</a>. Available from <a href="http://www.bioone.org/doi/10.1642/AUK-17-219.1" target="_blank">http://www.bioone.org/doi/10.1642/AUK-17-219.1</a> (accessed April 26, 2018).</div>