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Resultado: un conjunto de datos inédito en condiciones reales, con ",[325,450,451],{},"valores de referencia de las frecuencias cardíacas y respiratorias normales"," según ",[325,454,455],{},"la edad",", el ",[325,458,459],{},"peso",[325,461,462],{},"sexo",", la ",[325,465,466],{},"raza",[325,468,469],{},"ritmo circadiano",", e incluso la ",[325,472,473],{},"estación"," para los perros que viven en el hemisferio norte, así como perfiles distintivos identificados en ",[325,476,477],{},"129 perros cardíacos",[316,479,480,481,484],{},"La cohorte AI-COLLAR proporciona una base científica inigualable para las ",[325,482,483],{},"frecuencias cardíaca y respiratoria normales en perros",":",[486,487,488,494,500],"ul",{},[489,490,491,493],"li",{},[325,492,447],{}," seguidos en su entorno natural.",[489,495,496,499],{},[325,497,498],{},"29 países",", de los cuales el 42% en Francia y el 29% en Estados Unidos.",[489,501,502,505,506,354],{},[325,503,504],{},"189 días"," de uso medio por perro, cubriendo ",[325,507,508],{},"113 razas y todas las etapas de la vida",[316,510,511],{},"Recogidos lejos del estrés de la clínica, estos datos definen los puntos de referencia fisiológicos que faltaban en la medicina veterinaria preventiva.",[316,513,514],{},[320,515,516],{},"Figura de Chetboul et al., 2025 (CC BY 4.0)",[518,519,521,524,538],"content-block",{":tinted":520},"true",[311,522],{"tag":440,"title":523},"¿Cuál es la frecuencia cardíaca normal de un perro? ¿Cuál es la frecuencia respiratoria normal?",[316,525,526,527,530,531,534,535,354],{},"Estas son las preguntas que se hacen cada padre de perro y cada veterinario. El estudio AI-COLLAR aporta las primeras respuestas completas, estableciendo valores de ",[325,528,529],{},"frecuencia cardíaca en reposo (FCR)"," y de ",[325,532,533],{},"frecuencia respiratoria en reposo (FRR)"," para los perros en su ",[325,536,537],{},"vida cotidiana",[539,540,543],"div",{"className":541},[542],"table-scroll-wrapper",[544,545,546,568],"table",{},[547,548,549],"thead",{},[550,551,552,556,559,562,565],"tr",{},[553,554,555],"th",{},"Características",[553,557,558],{},"Subgrupos",[553,560,561],{},"Número de perros",[553,563,564],{},"Frecuencia cardíaca (bpm)",[553,566,567],{},"Frecuencia respiratoria (Brpm)",[569,570,571,598,620,645,666,690,712,733,755,779,801],"tbody",{},[550,572,573,579,582,585,592],{},[574,575,576],"td",{},[325,577,578],{},"Sexo",[574,580,581],{},"Perros machos",[574,583,584],{},"314",[574,586,587,588],{},"60,3 ",[589,590,591],"span",{},"54,7–65,2",[574,593,594,595],{},"16,0 ",[589,596,597],{},"13,7–18,4",[550,599,600,602,605,608,614],{},[574,601],{},[574,603,604],{},"Perras",[574,606,607],{},"248",[574,609,610,611],{},"60,7 ",[589,612,613],{},"56,2–65,4",[574,615,616,617],{},"16,1 ",[589,618,619],{},"14,0–18,7",[550,621,622,627,630,633,639],{},[574,623,624],{},[325,625,626],{},"Momento de medida",[574,628,629],{},"Noche",[574,631,632],{},"533",[574,634,635,636],{},"58,3 ",[589,637,638],{},"53,6–64,2",[574,640,641,642],{},"14,2 ",[589,643,644],{},"12,1–17,0",[550,646,647,649,652,654,660],{},[574,648],{},[574,650,651],{},"Día",[574,653,632],{},[574,655,656,657],{},"61,3 ",[589,658,659],{},"56,3–66,7",[574,661,662,663],{},"17,4 ",[589,664,665],{},"15,2–19,8",[550,667,668,673,676,679,685],{},[574,669,670],{},[325,671,672],{},"Categoría de tamaño",[574,674,675],{},"Perros grandes (> 20 kg)",[574,677,678],{},"355",[574,680,681,682],{},"59,5 ",[589,683,684],{},"54,7–63,8",[574,686,687,688],{},"15,6 ",[589,689,597],{},[550,691,692,694,697,700,706],{},[574,693],{},[574,695,696],{},"Perros de tamaño pequeño a mediano (≤20 kg)",[574,698,699],{},"207",[574,701,702,703],{},"62,1 ",[589,704,705],{},"56,4–68,1",[574,707,708,709],{},"16,5 ",[589,710,711],{},"14,5–19,0",[550,713,714,716,719,722,727],{},[574,715],{},[574,717,718],{},"Perros de tamaño mediano a grande (>10 kg)",[574,720,721],{},"478",[574,723,681,724],{},[589,725,726],{},"54,6–64,2",[574,728,729,730],{},"15,8 ",[589,731,732],{},"13,7–18,3",[550,734,735,737,740,743,749],{},[574,736],{},[574,738,739],{},"Perros de tamaño pequeño (≤10 kg)",[574,741,742],{},"84",[574,744,745,746],{},"65,0 ",[589,747,748],{},"60,9–69,4",[574,750,751,752],{},"17,2 ",[589,753,754],{},"15,0–19,9",[550,756,757,762,765,768,774],{},[574,758,759],{},[325,760,761],{},"Estado de salud",[574,763,764],{},"Perros aparentemente sanos",[574,766,767],{},"562",[574,769,770,771],{},"60,5 ",[589,772,773],{},"55,2–65,3",[574,775,616,776],{},[589,777,778],{},"13,8–18,7",[550,780,781,783,786,789,795],{},[574,782],{},[574,784,785],{},"Perros enfermos",[574,787,788],{},"166",[574,790,791,792],{},"65,4 ",[589,793,794],{},"60,0–78,5",[574,796,797,798],{},"17,5 ",[589,799,800],{},"14,6–20,9",[550,802,803,805,808,811,817],{},[574,804],{},[574,806,807],{},"Perros con enfermedades cardíacas",[574,809,810],{},"129",[574,812,813,814],{},"67,3 ",[589,815,816],{},"61,0–81,5",[574,818,819,820],{},"18,0 ",[589,821,822],{},"14,9–21,5",[518,824,828,831,834,876,883],{"image":825,"image-alt":826,"image-position":827,":zoomable":520},"\u002Flanding\u002Fai-collar\u002Ffigure_4.webp","Evolución de la frecuencia cardíaca según la edad","left",[311,829],{"tag":440,"title":830},"Cómo la edad transforma las constantes vitales",[316,832,833],{},"El seguimiento longitudinal destaca perfiles distintos para la frecuencia cardíaca y la respiración:",[486,835,836,850,863],{},[489,837,838,841,842,845,846,849],{},[325,839,840],{},"Los cachorros (≤ 12 meses)"," disminuyen notablemente, con una frecuencia cardíaca mediana que pasa de ",[325,843,844],{},"78,5 a 59,1 latidos por minuto",". La frecuencia respiratoria disminuye en paralelo, de aproximadamente ",[325,847,848],{},"22,6 a 15,3 respiraciones por minuto",", mostrando cuán rápido se calman fisiológicamente los perros jóvenes.",[489,851,852,855,856,859,860,354],{},[325,853,854],{},"Los adultos (1–10 años)"," se estabilizan, con una frecuencia cardíaca alrededor de ",[325,857,858],{},"60 latidos por minuto"," y una frecuencia respiratoria cercana a ",[325,861,862],{},"16 respiraciones por minuto",[489,864,865,868,869,872,873,354],{},[325,866,867],{},"Los seniors (≥ 10 años)"," experimentan un aumento progresivo, la frecuencia cardíaca alcanzando ",[325,870,871],{},"68,7 latidos por minuto"," y la frecuencia respiratoria elevándose también hasta ",[325,874,875],{},"17,4 respiraciones por minuto",[316,877,878,879,882],{},"Comprender estos ",[325,880,881],{},"rangos normales de frecuencia cardíaca propios de cada edad"," le ayuda a detectar cualquier desviación mucho antes de que se agrave.",[316,884,885],{},[320,886,516],{},[518,888,892,895,906,913],{"image":889,"image-alt":890,"image-position":891,":zoomable":520},"\u002Flanding\u002Fai-collar\u002Ffigure_6.webp","Comparación de frecuencias día y noche","right",[311,893],{"tag":440,"title":894},"Día vs noche: descifrando el ritmo circadiano",[316,896,897,898,901,902,905],{},"La vigilancia continua revela una señal clara: la ",[325,899,900],{},"frecuencia cardíaca y la frecuencia respiratoria disminuyen notablemente por la noche",". Esta ",[325,903,904],{},"firma circadiana"," refleja un descanso profundo y un tono autónomo equilibrado.",[316,907,908,909,912],{},"Las ",[325,910,911],{},"frecuencias cardíacas y respiratorias normales"," son más bajas durante el sueño nocturno que en el reposo diurno.",[316,914,915],{},[320,916,516],{},[518,918,921,924,930,966,969],{"image":919,"image-alt":920,"image-position":827,":zoomable":520},"\u002Flanding\u002Fai-collar\u002Ffigure_7.webp","Frecuencias cardíacas y respiratorias según el peso",[311,922],{"tag":440,"title":923},"Frecuencias cardíaca y respiratoria según el peso y la raza",[316,925,926,927,484],{},"La categoría de peso y la genética moldean los ",[325,928,929],{},"valores normales de frecuencia cardíaca y respiratoria",[486,931,932,942,957],{},[489,933,934,937,938,941],{},[325,935,936],{},"Los perros grandes (> 20 kg)"," muestran ",[325,939,940],{},"frecuencias cardíaca y respiratoria más bajas"," que sus congéneres más pequeños.",[489,943,944,945,948,949,952,953,956],{},"Los ",[325,946,947],{},"Golden Retrievers",", ",[325,950,951],{},"Pastores Australianos"," y ",[325,954,955],{},"Border Collies"," presentan las frecuencias cardíacas en reposo más bajas.",[489,958,944,959,961,962,965],{},[325,960,951],{}," tienen frecuencias respiratorias normales más altas, mientras que los ",[325,963,964],{},"Dobermans"," respiran más lentamente.",[316,967,968],{},"Interpretar el rango de valores de un perro requiere un referente construido sobre perfiles de peso y raza similares: es precisamente lo que proporciona el conjunto de datos AI-COLLAR.",[316,970,971],{},[320,972,516],{},[518,974,977,980,991,998],{"image":975,"image-alt":976,"image-position":891,":zoomable":520},"\u002Flanding\u002Fai-collar\u002Ffigure_8.webp","Variación mensual de las constantes vitales",[311,978],{"tag":440,"title":979},"Variaciones estacionales de los valores normales",[316,981,982,983,986,987,990],{},"En el hemisferio norte, la ",[325,984,985],{},"frecuencia cardíaca disminuye durante el verano"," mientras que la ",[325,988,989],{},"frecuencia respiratoria aumenta desde abril y alcanza su punto máximo en agosto",". El jadeo térmico es una respuesta saludable a las altas temperaturas.",[316,992,993,994,997],{},"Conocer estos ",[325,995,996],{},"patrones estacionales de frecuencia cardíaca y respiratoria normales"," evita falsas alarmas y acelera la intervención cuando un indicador realmente se desvía de los rangos de referencia. Nuestros algoritmos contextualizan cada medida con los efectos del clima.",[316,999,1000],{},[320,1001,516],{},[1003,1004,1007,1010,1021],"page-key-message",{"image":1005,"image-alt":1006},"\u002Fimg\u002Fdogs\u002Fgolden_sitting_dramaticlight2.webp","Valores normales de frecuencia cardíaca y respiratoria en perros",[311,1008],{"tag":440,"title":1009},"Cada latido cuenta",[316,1011,1012,1013,1016,1017,1020],{},"El Invoxia Biotracker monitorea continuamente la ",[325,1014,1015],{},"salud cardíaca"," de su perro: detección de ritmos irregulares, seguimiento de la frecuencia respiratoria y alertas sobre las evoluciones que pueden salvarle la vida. ",[325,1018,1019],{},"La serenidad",", colgada de su collar.",[387,1022,1023],{"url":389,"variant":63},[316,1024,1025],{},"Más información sobre el Invoxia Biotracker",[434,1027,1030,1033,1043,1057,1064],{"image":1028,"image-alt":1029,":reverse":520,":tinted":520},"\u002Flanding\u002Fai-collar\u002Ffigure_2.webp","Detección algorítmica de eventos",[311,1031],{"tag":440,"title":1032},"Detección temprana impulsada por IA",[316,1034,1035,1036,1038,1039,1042],{},"Los perros con trastornos cardíacos presentan una ",[325,1037,529],{}," y una ",[325,1040,1041],{},"frecuencia respiratoria (FRR)"," elevadas mucho antes de la aparición de síntomas visibles. El Invoxia Biotracker capta estas señales débiles con anticipación.",[486,1044,1045,1051],{},[489,1046,1047,1050],{},[325,1048,1049],{},"120 días"," antes de un edema pulmonar, el algoritmo detectó un aumento continuo de la FCR.",[489,1052,1053,1056],{},[325,1054,1055],{},"129 perros"," que viven con una enfermedad cardíaca permitieron definir umbrales personalizados.",[316,1058,1059,1060,1063],{},"Resultado: alertas enviadas ",[325,1061,1062],{},"antes"," de la emergencia clínica, ofreciendo a los veterinarios un tiempo de acción valioso.",[316,1065,1066],{},[320,1067,516],{},[434,1069,1072,1075,1085,1101,1108],{"image":1070,"image-alt":1071},"\u002Flanding\u002Fai-collar\u002Ffigure_9.webp","Comparación entre perros sanos y enfermos",[311,1073],{"tag":440,"title":1074},"Cuando las constantes se desvían de lo normal",[316,1076,1077,1078,1081,1082,484],{},"También comparamos los perros sanos con aquellos diagnosticados con ",[325,1079,1080],{},"afecciones cardíacas",", y los resultados muestran desviaciones claras respecto a los ",[325,1083,1084],{},"valores normales de frecuencia cardíaca",[486,1086,1087,1094],{},[489,1088,1089,1090,1093],{},"Los perros cardíacos presentan ",[325,1091,1092],{},"frecuencias cardíacas en reposo superiores a los rangos normales"," para su edad y peso.",[489,1095,1096,1097,1100],{},"Sus ",[325,1098,1099],{},"frecuencias respiratorias son más altas que los valores normales"," observados en perros sanos.",[316,1102,1103,1104,1107],{},"Estas variaciones de los signos vitales están estrechamente relacionadas con la enfermedad y pueden aparecer antes de los síntomas visibles. Esto sugiere que ",[325,1105,1106],{},"el seguimiento continuo de las medias de frecuencia cardíaca y respiratoria permitiría detectar problemas más temprano",", para que los veterinarios y los padres de perros puedan intervenir antes de que la situación se deteriore.",[316,1109,1110],{},[320,1111,516],{},[1113,1114,1118,1121,1132,1151,1154],"page-video-block",{"button-url":389,"poster":1115,"video":1116,"video-alt":1117,"video-position":891},"\u002Fvid\u002Fproducts\u002Fminitailz_turning_withphone.en.webp","\u002Fvid\u002Fproducts\u002Fminitailz_turning_withphone.en.mp4","El Invoxia Biotracker y la app Invoxia",[311,1119],{"tag":440,"title":1120},"Cómo el Invoxia Biotracker GPS for Dogs protege a su perro diariamente",[316,1122,1123,1124,1127,1128,1131],{},"El Invoxia Biotracker GPS for Dogs es un ",[325,1125,1126],{},"sensor biométrico no invasivo",". Nuestro sensor se basa en la ",[325,1129,1130],{},"sismocardiografía"," para captar las microvibraciones en el cuello de su perro y convertirlas en métricas cardio-respiratorias fiables.",[486,1133,1134,1137,1148],{},[489,1135,1136],{},"Mediciones automáticas tan pronto como su perro esté tranquilamente acostado.",[489,1138,1139,1140,1143,1144,1147],{},"Modelos de IA entrenados en la mayor cohorte canina, ofreciendo ",[325,1141,1142],{},"99,6%"," de precisión para la FCR y ",[325,1145,1146],{},"98,6%"," para la FRR.",[489,1149,1150],{},"Cero fricción: coloque el collar y obtenga un monitoreo de salud 24\u002F7.",[316,1152,1153],{},"Su perro mantiene su rutina; usted gana una visibilidad de nivel médico en tiempo real.",[356,1155,1156],{"v-slot:button":358},[316,1157,1158],{},"Cómo mide el Biotracker",[518,1160,1163,1166,1176,1179],{"image":1161,"image-alt":1162,"image-position":891,"button-url":395},"\u002Flanding\u002Fai-collar\u002Ffrontiers_home.webp","Portada de la publicación científica",[311,1164],{"tag":440,"title":1165},"Profundizar gracias a la publicación científica",[316,1167,1168,1169,1171,1172,354],{},"Explore la metodología completa y todos los resultados en ",[320,1170,331],{},": ",[225,1173,1175],{"href":395,"rel":1174},[341],"Resting heart and respiratory rates in dogs in their natural environment: new insights from a long-term, international, prospective study in a cohort of 703 dogs using a biometric device for longitudinal non-invasive cardiorespiratory monitoring",[316,1177,1178],{},"El acceso libre valida el enfoque de Invoxia y comparte esta base de conocimientos única con toda la comunidad veterinaria.",[356,1180,1181],{"v-slot:button":358},[316,1182,1183],{},"Leer la publicación completa",[518,1185,1186,1189,1194,1213],{":tinted":520},[311,1187],{"tag":440,"title":1188},"Referencias científicas",[1190,1191],"prose-h5",{"tag":1192,"title":1193},"h3","Referencia clave",[486,1195,1196],{},[489,1197,1198,1201,1202,1204,1205,1207,1208,354],{},[325,1199,1200],{},"Chetboul V, Humbert E, Dougoud L, Lorre G (2025)"," ",[320,1203,1175],{},". ",[320,1206,331],{},", 12:1667355. doi: 10.3389\u002Ffvets.2025.1667355. Bajo licencia ",[225,1209,1212],{"href":1210,"rel":1211},"https:\u002F\u002Fcreativecommons.org\u002Flicenses\u002Fby\u002F4.0\u002F",[341],"CC BY 4.0",[1214,1215,1216,1220],"details",{},[1217,1218,1219],"summary",{},"Bibliografía completa (44 referencias)",[486,1221,1222,1237,1252,1267,1281,1296,1311,1326,1341,1356,1371,1386,1401,1416,1431,1446,1460,1475,1489,1503,1517,1532,1546,1561,1575,1590,1605,1620,1635,1650,1664,1679,1694,1709,1723,1738,1752,1762,1776,1791,1806,1820,1835,1850],{},[489,1223,1224,1227,1228,1231,1232],{},[325,1225,1226],{},"Mfouth Kemajou, P, Mbanya, A y Coppieters, Y."," Digital approaches in post-COVID healthcare: a systematic review of technological innovations in disease management. ",[320,1229,1230],{},"Biol Methods Protoc."," (2024) 9:bpae070. ",[225,1233,1236],{"href":1234,"rel":1235},"https:\u002F\u002Fdoi.org\u002F10.1093\u002Fbiomethods\u002Fbpae070",[341],"doi: 10.1093\u002Fbiomethods\u002Fbpae070",[489,1238,1239,1242,1243,1246,1247],{},[325,1240,1241],{},"Lee, NK y Kim, JS."," Status and trends of the digital healthcare industry. ",[320,1244,1245],{},"Healthc Inform Res."," (2024) 30:172-83. ",[225,1248,1251],{"href":1249,"rel":1250},"https:\u002F\u002Fdoi.org\u002F10.4258\u002Fhir.2024.30.3.172",[341],"doi: 10.4258\u002Fhir.2024.30.3.172",[489,1253,1254,1257,1258,1261,1262],{},[325,1255,1256],{},"Jensen, MT, Treskes, RW, Caiani, EG, et al."," ESC working group on e-cardiology position paper: use of commercially available wearable technology for heart rate and activity tracking in primary and secondary cardiovascular prevention. ",[320,1259,1260],{},"Eur Heart J Digit Health."," (2021) 2:49-59. ",[225,1263,1266],{"href":1264,"rel":1265},"https:\u002F\u002Fdoi.org\u002F10.1093\u002Fehjdh\u002Fztab011",[341],"doi: 10.1093\u002Fehjdh\u002Fztab011",[489,1268,1269,1272,1273,1275,1276],{},[325,1270,1271],{},"Schuuring, MJ, Treskes, RW, Castiello, T, et al."," Digital solutions to optimize guideline-directed medical therapy prescription rates in patients with heart failure. ",[320,1274,1260],{}," (2024) 5:670-82. ",[225,1277,1280],{"href":1278,"rel":1279},"https:\u002F\u002Fdoi.org\u002F10.1093\u002Fehjdh\u002Fztae064",[341],"doi: 10.1093\u002Fehjdh\u002Fztae064",[489,1282,1283,1286,1287,1290,1291],{},[325,1284,1285],{},"Bayoumy, K, Gaber, M, Elshafeey, A, et al."," Smart wearable devices in cardiovascular care: where we are and how to move forward. ",[320,1288,1289],{},"Nat Rev Cardiol."," (2021) 18:581-99. ",[225,1292,1295],{"href":1293,"rel":1294},"https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41569-021-00522-7",[341],"doi: 10.1038\u002Fs41569-021-00522-7",[489,1297,1298,1301,1302,1305,1306],{},[325,1299,1300],{},"Hughes, A, Shandhi, MMH, Master, H, Dunn, J y Brittain, E."," Wearable devices in cardiovascular medicine. ",[320,1303,1304],{},"Circ Res."," (2023) 132:652-70. ",[225,1307,1310],{"href":1308,"rel":1309},"https:\u002F\u002Fdoi.org\u002F10.1161\u002FCIRCRESAHA",[341],"doi: 10.1161\u002FCIRCRESAHA",[489,1312,1313,1316,1317,1320,1321],{},[325,1314,1315],{},"Russell, M, Cain, E, Bazzano, L, et al."," Collecting at-home biometric measures for longitudinal research from the i3C: feasibility and acceptability study. ",[320,1318,1319],{},"JMIR Hum Factors."," (2025) 12:e71103. ",[225,1322,1325],{"href":1323,"rel":1324},"https:\u002F\u002Fdoi.org\u002F10.2196\u002F71103",[341],"doi: 10.2196\u002F71103",[489,1327,1328,1331,1332,1335,1336],{},[325,1329,1330],{},"Bhaltadak, V, Ghewade, B y Yelne, S."," A comprehensive review on advancements in wearable technologies: revolutionizing cardiovascular medicine. ",[320,1333,1334],{},"Cureus."," (2024) 16:e61312. ",[225,1337,1340],{"href":1338,"rel":1339},"https:\u002F\u002Fdoi.org\u002F10.7759\u002Fcureus.61312",[341],"doi: 10.7759\u002Fcureus.61312",[489,1342,1343,1346,1347,1350,1351],{},[325,1344,1345],{},"Scholte, NTB, van Ravensberg, AE, Shakoor, A, et al."," A scoping review on advancements in noninvasive wearable technology for heart failure management. ",[320,1348,1349],{},"NPJ Digit Med."," (2024) 7:279. ",[225,1352,1355],{"href":1353,"rel":1354},"https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41746-024-01268-5",[341],"doi: 10.1038\u002Fs41746-024-01268-5",[489,1357,1358,1361,1362,1365,1366],{},[325,1359,1360],{},"Ortmeyer, HK, Robey, L y McDonald, T."," Combining Actigraph link and PetPace collar data to measure activity, proximity, and physiological responses in freely moving dogs in a natural environment. ",[320,1363,1364],{},"Animals (Basel)."," (2018) 8:230. ",[225,1367,1370],{"href":1368,"rel":1369},"https:\u002F\u002Fdoi.org\u002F10.3390\u002Fani8120230",[341],"doi: 10.3390\u002Fani8120230",[489,1372,1373,1376,1377,1380,1381],{},[325,1374,1375],{},"Rowlison de Ortiz, A, Belda, B, Hash, J, et al."," Initial exploration of the discriminatory ability of the PetPace collar to detect differences in activity and physiological variables between healthy and osteoarthritic dogs. ",[320,1378,1379],{},"Front Pain Res (Lausanne)."," (2022) 3:949877. ",[225,1382,1385],{"href":1383,"rel":1384},"https:\u002F\u002Fdoi.org\u002F10.3389\u002Ffpain.2022.949877",[341],"doi: 10.3389\u002Ffpain.2022.949877",[489,1387,1388,1391,1392,1395,1396],{},[325,1389,1390],{},"Belda, B, Enomoto, M, Case, BC y Lascelles, BDX."," Initial evaluation of PetPace activity monitor. ",[320,1393,1394],{},"Vet J."," (2018) 237:63-8. ",[225,1397,1400],{"href":1398,"rel":1399},"https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tvjl.2018.05.011",[341],"doi: 10.1016\u002Fj.tvjl.2018.05.011",[489,1402,1403,1406,1407,1410,1411],{},[325,1404,1405],{},"Gunasekaran, T y Sanders, RA."," Assessment of heart rate measurements obtained from a smart collar compared to 24-h Holter monitoring in healthy dogs. ",[320,1408,1409],{},"J Vet Cardiol."," (2025) 57:58-64. ",[225,1412,1415],{"href":1413,"rel":1414},"https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jvc.2024.11.002",[341],"doi: 10.1016\u002Fj.jvc.2024.11.002",[489,1417,1418,1421,1422,1425,1426],{},[325,1419,1420],{},"Jarkoff, H, Lorre, G y Humbert, E."," Assessing the accuracy of a smart 2 collar for dogs: predictive performance for heart and breathing rates on a large scale dataset. ",[320,1423,1424],{},"Cold Spring Harbor Laboratory."," (2023). ",[225,1427,1430],{"href":1428,"rel":1429},"https:\u002F\u002Fdoi.org\u002F10.1101\u002F2023.06.09.544347",[341],"doi: 10.1101\u002F2023.06.09.544347",[489,1432,1433,1436,1437,1440,1441],{},[325,1434,1435],{},"Keene, BW, Atkins, CE, Bonagura, JD, et al."," ACVIM consensus guidelines for the diagnosis and treatment of myxomatous mitral valve disease in dogs. ",[320,1438,1439],{},"J Vet Intern Med."," (2019) 33:1127-40. ",[225,1442,1445],{"href":1443,"rel":1444},"https:\u002F\u002Fdoi.org\u002F10.1111\u002Fjvim.15488",[341],"doi: 10.1111\u002Fjvim.15488",[489,1447,1448,1451,1452,1454,1455],{},[325,1449,1450],{},"Wess, G."," Screening for dilated cardiomyopathy in dogs. ",[320,1453,1409],{}," (2022) 40:51-68. ",[225,1456,1459],{"href":1457,"rel":1458},"https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jvc.2021.09.004",[341],"doi: 10.1016\u002Fj.jvc.2021.09.004",[489,1461,1462,1465,1466,1469,1470],{},[325,1463,1464],{},"Schober, KE, Hart, TM, Stern, JA, et al."," Effects of treatment on respiratory rate, serum natriuretic peptide concentration, and doppler echocardiographic indices of left ventricular filling pressure in dogs with congestive heart failure. ",[320,1467,1468],{},"J Am Vet Med Assoc."," (2011) 239:468-79. ",[225,1471,1474],{"href":1472,"rel":1473},"https:\u002F\u002Fdoi.org\u002F10.2460\u002Fjavma.239.4.468",[341],"doi: 10.2460\u002Fjavma.239.4.468",[489,1476,1477,1480,1481,1483,1484],{},[325,1478,1479],{},"Porciello, F, Rishniw, M, Ljungvall, I, et al."," Sleeping and resting respiratory rates in dogs and cats with medically-controlled left-sided congestive heart failure. ",[320,1482,1394],{}," (2016) 207:164-8. ",[225,1485,1488],{"href":1486,"rel":1487},"https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tvjl.2015.08.017",[341],"doi: 10.1016\u002Fj.tvjl.2015.08.017",[489,1490,1491,1494,1495,1497,1498],{},[325,1492,1493],{},"Boswood, A, Gordon, SG, Haggstrom, J, et al."," Temporal changes in clinical and radiographic variables in dogs with preclinical myxomatous mitral valve disease: the EPIC study. ",[320,1496,1439],{}," (2020) 34:1108-18. ",[225,1499,1502],{"href":1500,"rel":1501},"https:\u002F\u002Fdoi.org\u002F10.1111\u002Fjvim.15753",[341],"doi: 10.1111\u002Fjvim.15753",[489,1504,1505,1508,1509,1511,1512],{},[325,1506,1507],{},"Reynolds, CA, Brown, DC, Rush, JE, et al."," Prediction of first onset of congestive heart failure in dogs with degenerative mitral valve disease: the PREDICT cohort study. ",[320,1510,1409],{}," (2012) 14:193-202. ",[225,1513,1516],{"href":1514,"rel":1515},"https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jvc.2012.01.008",[341],"doi: 10.1016\u002Fj.jvc.2012.01.008",[489,1518,1519,1522,1523,1526,1527],{},[325,1520,1521],{},"Hezzell, MJ, Humm, K, Dennis, SG, Agee, L y Boswood, A."," Relationships between heart rate and age, bodyweight and breed in 10,849 dogs. ",[320,1524,1525],{},"J Small Anim Pract."," (2013) 54:318-24. ",[225,1528,1531],{"href":1529,"rel":1530},"https:\u002F\u002Fdoi.org\u002F10.1111\u002Fjsap.12079",[341],"doi: 10.1111\u002Fjsap.12079",[489,1533,1534,1537,1538,1540,1541],{},[325,1535,1536],{},"Ferasin, L, Ferasin, H y Little, CJ."," Lack of correlation between canine heart rate and body size in veterinary clinical practice. ",[320,1539,1525],{}," (2010) 51:412-8. ",[225,1542,1545],{"href":1543,"rel":1544},"https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1748-5827.2010.00954.x",[341],"doi: 10.1111\u002Fj.1748-5827.2010.00954.x",[489,1547,1548,1551,1552,1555,1556],{},[325,1549,1550],{},"Lee, PM y Brown, RHT."," Establishing 24-hour Holter reference intervals for clinically healthy puppies. ",[320,1553,1554],{},"Res Vet Sci."," (2019) 125:253-5. ",[225,1557,1560],{"href":1558,"rel":1559},"https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.rvsc.2019.07.010",[341],"doi: 10.1016\u002Fj.rvsc.2019.07.010",[489,1562,1563,1566,1567,1569,1570],{},[325,1564,1565],{},"Bodey, AR y Michell, AR."," Epidemiological study of blood pressure in domestic dogs. ",[320,1568,1525],{}," (1996) 37:116-25. ",[225,1571,1574],{"href":1572,"rel":1573},"https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1748-5827.1996.tb02358.x",[341],"doi: 10.1111\u002Fj.1748-5827.1996.tb02358.x",[489,1576,1577,1580,1581,1584,1585],{},[325,1578,1579],{},"Montoya Navarrete, AL, Quezada Tristan, T, Lozano Santillan, S, et al."," Effect of age, sex, and body size on the blood biochemistry and physiological constants of dogs. ",[320,1582,1583],{},"BMC Vet Res."," (2021) 17:265. ",[225,1586,1589],{"href":1587,"rel":1588},"https:\u002F\u002Fdoi.org\u002F10.1186\u002Fs12917-021-02976-w",[341],"doi: 10.1186\u002Fs12917-021-02976-w",[489,1591,1592,1595,1596,1599,1600],{},[325,1593,1594],{},"Geis, WP, Tatooles, CJ, Priola, DV y Friedman, WF."," Factors influencing neurohumoral control of the heart in the newborn dog. ",[320,1597,1598],{},"Am J Phys."," (1975) 228:1685-9. ",[225,1601,1604],{"href":1602,"rel":1603},"https:\u002F\u002Fdoi.org\u002F10.1152\u002Fajplegacy.1975.228.6.1685",[341],"doi: 10.1152\u002Fajplegacy.1975.228.6.1685",[489,1606,1607,1610,1611,1614,1615],{},[325,1608,1609],{},"Hajduczok, G, Chapleau, MW y Abboud, FM."," Rapid adaptation of central pathways explains the suppressed baroreflex with aging. ",[320,1612,1613],{},"Neurobiol Aging."," (1991) 12:601-4. ",[225,1616,1619],{"href":1617,"rel":1618},"https:\u002F\u002Fdoi.org\u002F10.1016\u002F0197-4580(91)90092-x",[341],"doi: 10.1016\u002F0197-4580(91)90092-x",[489,1621,1622,1625,1626,1629,1630],{},[325,1623,1624],{},"Monahan, KD."," Effect of aging on baroreflex function in humans. ",[320,1627,1628],{},"Am J Physiol Regul Integr Comp Physiol."," (2007) 293:R3-R12. ",[225,1631,1634],{"href":1632,"rel":1633},"https:\u002F\u002Fdoi.org\u002F10.1152\u002Fajpregu.00031.2007",[341],"doi: 10.1152\u002Fajpregu.00031.2007",[489,1636,1637,1640,1641,1644,1645],{},[325,1638,1639],{},"Randall, OS, Esler, MD, Bulloch, EG, et al."," Relationship of age and blood pressure to baroreflex sensitivity and arterial compliance in man. ",[320,1642,1643],{},"Clin Sci Mol Med Suppl."," (1976) 51:357s-60s. ",[225,1646,1649],{"href":1647,"rel":1648},"https:\u002F\u002Fdoi.org\u002F10.1042\u002Fcs051357s",[341],"doi: 10.1042\u002Fcs051357s",[489,1651,1652,1655,1656,1658,1659],{},[325,1653,1654],{},"Rishniw, M, Ljungvall, I, Porciello, F, Haggstrom, J y Ohad, DG."," Sleeping respiratory rates in apparently healthy adult dogs. ",[320,1657,1554],{}," (2012) 93:965-9. ",[225,1660,1663],{"href":1661,"rel":1662},"https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.rvsc.2011.12.014",[341],"doi: 10.1016\u002Fj.rvsc.2011.12.014",[489,1665,1666,1669,1670,1673,1674],{},[325,1667,1668],{},"Saikia, D y Mahanta, B."," Cardiovascular and respiratory physiology in children. ",[320,1671,1672],{},"Indian J Anaesth."," (2019) 63:690-7. ",[225,1675,1678],{"href":1676,"rel":1677},"https:\u002F\u002Fdoi.org\u002F10.4103\u002Fija.IJA_490_19",[341],"doi: 10.4103\u002Fija.IJA_490_19",[489,1680,1681,1684,1685,1688,1689],{},[325,1682,1683],{},"Noujaim, SF, Lucca, E, Munoz, V, et al."," From mouse to whale: a universal scaling relation for the PR interval of the electrocardiogram of mammals. ",[320,1686,1687],{},"Circulation."," (2004) 110:2802-8. ",[225,1690,1693],{"href":1691,"rel":1692},"https:\u002F\u002Fdoi.org\u002F10.1161\u002F01.CIR.0000146785.15995.67",[341],"doi: 10.1161\u002F01.CIR.0000146785.15995.67",[489,1695,1696,1699,1700,1703,1704],{},[325,1697,1698],{},"Goldbogen, JA, Cade, DE, Calambokidis, J, et al."," Extreme bradycardia and tachycardia in the world's largest animal. ",[320,1701,1702],{},"Proc Natl Acad Sci USA."," (2019) 116:25329-32. ",[225,1705,1708],{"href":1706,"rel":1707},"https:\u002F\u002Fdoi.org\u002F10.1073\u002Fpnas.1914273116",[341],"doi: 10.1073\u002Fpnas.1914273116",[489,1710,1711,1714,1715,1717,1718],{},[325,1712,1713],{},"Lamb, AP, Meurs, KM y Hamlin, RL."," Correlation of heart rate to body weight in apparently normal dogs. ",[320,1716,1409],{}," (2010) 12:107-10. ",[225,1719,1722],{"href":1720,"rel":1721},"https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jvc.2010.04.001",[341],"doi: 10.1016\u002Fj.jvc.2010.04.001",[489,1724,1725,1728,1729,1732,1733],{},[325,1726,1727],{},"Hasegawa, M, Sasaki, M, Umemoto, Y, et al."," Exploring sleep heart rate variability: linear, nonlinear, and circadian rhythm perspectives. ",[320,1730,1731],{},"Front Vet Sci."," (2024) 11:1386425. ",[225,1734,1737],{"href":1735,"rel":1736},"https:\u002F\u002Fdoi.org\u002F10.3389\u002Ffvets.2024.1386425",[341],"doi: 10.3389\u002Ffvets.2024.1386425",[489,1739,1740,1743,1744,1746,1747],{},[325,1741,1742],{},"Varga, B, Gergely, A, Galambos, A y Kis, A."," Heart rate and heart rate variability during sleep in family dogs (Canis familiaris). ",[320,1745,1364],{}," (2018) 8:107. ",[225,1748,1751],{"href":1749,"rel":1750},"https:\u002F\u002Fdoi.org\u002F10.3390\u002Fani8070107",[341],"doi: 10.3390\u002Fani8070107",[489,1753,1754,1757,1758,1761],{},[325,1755,1756],{},"Noszczyk-Nowak, A, Pasawska, U y Nicpon, J."," ECG parameters in 24-hour holter monitoring in healthy dogs. ",[320,1759,1760],{},"Bull Vet Inst Pulawy."," (2009) 53:499-502.",[489,1763,1764,1767,1768,1770,1771],{},[325,1765,1766],{},"Ohad, DG, Rishniw, M, Ljungvall, I, Porciello, F y Haggstrom, J."," Sleeping and resting respiratory rates in dogs with subclinical heart disease. ",[320,1769,1468],{}," (2013) 243:839-43. ",[225,1772,1775],{"href":1773,"rel":1774},"https:\u002F\u002Fdoi.org\u002F10.2460\u002Fjavma.243.6.839",[341],"doi: 10.2460\u002Fjavma.243.6.839",[489,1777,1778,1781,1782,1785,1786],{},[325,1779,1780],{},"Goldberg, MB, Langman, VA y Taylor, CR."," Panting in dogs: paths of air flow in response to heat and exercise. ",[320,1783,1784],{},"Respir Physiol."," (1981) 43:327-38. ",[225,1787,1790],{"href":1788,"rel":1789},"https:\u002F\u002Fdoi.org\u002F10.1016\u002F0034-5687(81)90113-4",[341],"doi: 10.1016\u002F0034-5687(81)90113-4",[489,1792,1793,1796,1797,1800,1801],{},[325,1794,1795],{},"Parsons, S, Scott, AR y Macdonald, IA."," The effect of posture and environmental temperature on cardiovascular reflexes in normal subjects and diabetes mellitus. ",[320,1798,1799],{},"Clin Auton Res."," (1992) 2:147-51. ",[225,1802,1805],{"href":1803,"rel":1804},"https:\u002F\u002Fdoi.org\u002F10.1007\u002FBF01818954",[341],"doi: 10.1007\u002FBF01818954",[489,1807,1808,1811,1812,1814,1815],{},[325,1809,1810],{},"Mavropoulou, A, Oliveira, P y Willis, R."," Holter monitoring in dogs: 24 h vs. 48 h. ",[320,1813,1394],{}," (2021) 272:105628. ",[225,1816,1819],{"href":1817,"rel":1818},"https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tvjl.2021.105628",[341],"doi: 10.1016\u002Fj.tvjl.2021.105628",[489,1821,1822,1825,1826,1829,1830],{},[325,1823,1824],{},"Calvert, CA."," Heart rate variability. ",[320,1827,1828],{},"Vet Clin North Am Small Anim Pract."," (1998) 28:1409-27. ",[225,1831,1834],{"href":1832,"rel":1833},"https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs0195-5616(98)50129-5",[341],"doi: 10.1016\u002Fs0195-5616(98)50129-5",[489,1836,1837,1840,1841,1844,1845],{},[325,1838,1839],{},"Petrie, JP."," Practical application of holter monitoring in dogs and cats. ",[320,1842,1843],{},"Clin Tech Small Anim Pract."," (2005) 20:173-81. ",[225,1846,1849],{"href":1847,"rel":1848},"https:\u002F\u002Fdoi.org\u002F10.1053\u002Fj.ctsap.2005.05.006",[341],"doi: 10.1053\u002Fj.ctsap.2005.05.006",[489,1851,1852,1854,1855,1857,1858],{},[325,1853,1405],{}," Determining the optimal Holter monitoring duration for detecting ventricular arrhythmia in dogs: a Bayesian approach. ",[320,1856,1409],{}," (2025) 60:14-22. ",[225,1859,1862],{"href":1860,"rel":1861},"https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jvc.2025.05.003",[341],"doi: 10.1016\u002Fj.jvc.2025.05.003",[1864,1865,1867,1875,1880,1895,1909,1919,1929],"page-faq",{"contact-url":1866},"$locale\u002Fchatbot",[356,1868,1869,1872],{"v-slot:title":358},[1190,1870],{"tag":440,"title":1871,":dark":520},"FAQ: frecuencias cardíaca y respiratoria normales del perro",[316,1873,1874],{},"Las preguntas que más nos hacen propietarios y veterinarios sobre los valores de referencia de AI-COLLAR.",[356,1876,1877],{"v-slot:contact-button":358},[316,1878,1879],{},"Contáctanos",[1881,1882,1883,1888],"page-faq-item",{},[356,1884,1885],{"v-slot:title":358},[316,1886,1887],{},"¿Cuál es la frecuencia cardíaca normal de un perro en reposo?",[316,1889,1890,1891,1894],{},"En la cohorte AI-COLLAR, los perros aparentemente sanos descansan con una mediana de ",[325,1892,1893],{},"60,5 latidos por minuto"," (rango intercuartílico 55,2-65,3). El tamaño influye: los perros de 10 kg o menos están en 65,0 lpm y los de más de 20 kg en 59,5 lpm. Los cachorros parten de unos 78,5 lpm y se estabilizan cerca de 59 lpm al cumplir un año, mientras que a partir de los 10 años el valor vuelve a subir hasta unos 68,7 lpm.",[1881,1896,1897,1902],{},[356,1898,1899],{"v-slot:title":358},[316,1900,1901],{},"¿Cuál es la frecuencia respiratoria normal de un perro en reposo?",[316,1903,1904,1905,1908],{},"La misma cohorte respira con una mediana de ",[325,1906,1907],{},"16,1 respiraciones por minuto"," (13,8-18,7) en reposo, y bastante más despacio de noche (14,2) que de día (17,4). Los perros de 10 kg o menos respiran algo más rápido, 17,2. Una frecuencia en reposo o durante el sueño que se mantenga por encima de 30 respiraciones por minuto es el umbral de alerta que usan los cardiólogos veterinarios: consulta con tu veterinario.",[1881,1910,1911,1916],{},[356,1912,1913],{"v-slot:title":358},[316,1914,1915],{},"¿Cómo se midieron estos valores de referencia?",[316,1917,1918],{},"703 perros aparentemente sanos, de 113 razas y en 29 países, llevaron un Invoxia Biotracker en su entorno habitual durante una mediana de 189 días. La frecuencia cardíaca y la respiratoria se miden automáticamente en los periodos de reposo, de día y de noche, lejos del estrés de la consulta: por eso quedan por debajo de los valores que se registran en la clínica. El dispositivo tiene una precisión del 99,6 % en frecuencia cardíaca y del 98,6 % en respiración.",[1881,1920,1921,1926],{},[356,1922,1923],{"v-slot:title":358},[316,1924,1925],{},"¿Cambian estas frecuencias con la edad, la hora y la estación?",[316,1927,1928],{},"Las tres. Ambas frecuencias caen con fuerza durante el primer año, se mantienen estables en la edad adulta, unos 60 latidos y 16 respiraciones por minuto, y vuelven a subir en los perros mayores. Las dos son claramente más bajas de noche que de día. Y en el hemisferio norte la frecuencia cardíaca baja durante el verano mientras que la respiratoria sube desde abril hasta su pico en agosto, cuando el perro jadea para refrescarse. Conocer esos patrones es lo que distingue una anomalía real de una tarde de calor.",[1881,1930,1931,1936],{},[356,1932,1933],{"v-slot:title":358},[316,1934,1935],{},"¿Dónde se puede leer el estudio completo?",[316,1937,1938,1939,1941],{},"El artículo se publicó en acceso abierto en ",[320,1940,331],{}," el 15 de septiembre de 2025 (DOI 10.3389\u002Ffvets.2025.1667355), firmado junto a la profesora Valérie Chetboul, de la École nationale vétérinaire d'Alfort. El texto completo y todas las figuras que aparecen en esta página son de consulta libre.",[518,1943,1944,1947,1950,1953],{"button-url":389},[311,1945],{"tag":440,"title":1946},"Del estudio al collar de su perro",[316,1948,1949],{},"Al igual que los objetos conectados que transforman la medicina humana, este estudio demuestra cómo la medicina veterinaria predictiva se vuelve posible: seguimiento individualizado, alertas tempranas y datos reales a gran escala para proteger a cada perro.",[316,1951,1952],{},"Gracias a los padres de perros comprometidos que hicieron posible AI-COLLAR. La misma tecnología que construyó esta referencia vela ahora por su propio perro, día tras día.",[356,1954,1955],{"v-slot:button":358},[316,1956,392],{},{"title":358,"searchDepth":1958,"depth":1958,"links":1959},2,[],"Valores normales de frecuencia cardíaca y respiratoria en perros según edad, peso y raza: la primera base de referencia del estudio AI-COLLAR (703 perros).",null,false,"md",{},"\u002Fimages\u002Fsocial-preview\u002Flanding-ai-collar.jpg","\u002Flocale\u002Fes\u002Fpages\u002Flanding\u002Fai-collar",{"name":1968,"authors":1969,"publication":331,"datePublished":1974,"doi":1975,"url":395},"Resting heArt and respIratory rates in dogs in their natural environment: new insights from a long-term, international, prospective study in a COhort of 703 dogs using a biometric device for LongitudinaL non-invasive cARdiorespiratory monitoring (the AI-COLLAR study)",[1970,1971,1972,1973],"Valérie Chetboul","Eric Humbert","Louis Dougoud","Guillaume Lorre","2025-09-15","10.3389\u002Ffvets.2025.1667355",{"title":293,"description":1960},{"loc":1966,"lastmod":1978},"2026-09-18","locale\u002Fes\u002Fpages\u002Flanding\u002Fai-collar","oyp4dg5ZF9XUpB0ilm7MiOwBDKIBRWTQ1UYSgRpSTik",1790158340276]