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https://doi.org/10.37815/rt= e.v33n2.840

Artículos originales=

 

Evaluación del reconocimiento de voz entre los servicios de Google y Amazon aplicado al Sistema Integrado de Seguridad ECU 911

Evaluation of voice recognition between Google and Amazon services applied to the ECU 911 Integrated Security System

Juan = José Peralta Vásconez1, Carlos Andrés Narváez Ortiz1, Marcos Patricio Orellana Cordero1  https://orcid.org/0000-0002-3671-9362, Paúl Andrés Patiño Le= ón1 https://orcid.org/0000-0001-9504-6= 498, Priscila Cedillo Orellana1, 2 https://orcid.org/0000-0002-6787-0655

 

1Universidad del Azuay, Cuenca, Ecuador

jjperalta@es.uazuay.edu.ec, = carlos.05.narvaez@es.uazuay.edu.ec= , = marore@uazuay.edu.ec, = andpatino@uazuay.edu.ec, = icedillo@uazuay.edu.ec

 

2Universidad de Cuenca, Cuenca, Ecuador

priscila.cedillo@ucuenca.edu.ec<= /p>

 

Enviado:         2021/07/09

Aceptado:       2021/09/28

Publicado:      2021/11/30                         

Resumen

3D"Cuadro

El reconocimiento automático de voz (ASR) es una de las ramas de la inteligencia artificial que hace posible la comunicación entre el humano y = la máquina, logrando que el usuario pueda interactuar con las máquinas de mane= ra natural.  En los últimos años, los sistemas ASR se han incrementado hasta el punto de lograr transcripciones c= asi perfectas, en la actualidad son muchas las empresas que desarrollan sistemas ASR tales como Google, Amazon, IBM, Microsoft. El objetivo de este trabajo = es evaluar los sistemas de reconocimiento de voz de Google Speech to Text y Amazon Transcribe con el fin de determinar cuál de ellas ofrece una mayor precisió= n al momento de convertir el audio en texto. La precisión de las transcripciones= se evalúa a través de la tasa de error por palabra (WER) la cual analiza las palabras eliminadas, sustituidas e insertadas con respecto a un texto de referencia de transcripción humana. Después de someter estos sistemas a dif= erentes ambientes de ruido se observa que el sistema con mayor rendimiento en el proceso de transcripción es el de Amazon Transcribe; por tal razón, se conc= luye que el servicio de Amazon muestra un mayor desempeño con respecto al servic= io de Google tanto con audios con un nivel de ruido de fondo más alto y con audios con un nivel de ruido de fondo más bajo.

Palabras clave: Amazon Transcribe, ASR, Google Speech to Tex= t, transcripción, WER.

 

Abstract

Automatic Speech Recognition (ASR) is one of the branches of artific= ial intelligence that makes communication between humans and machines possible, making it the closest thing to the interaction between humans. In recent ye= ars, ASR systems have increased to the point of achieving near-perfect transcriptions; today, many companies develop ASR systems, such as Google, Amazon, IBM, and Microsoft. This study aims to evaluate the voice recogniti= on systems of Google Speech to Text and Amazon Transcribe to determine which of them offers greater precision when converting audio into text. The accuracy= of transcripts was evaluated through the Word Error Rate (WER), which analyzes= the deleted, substituted, and inserted words concerning a human transcription reference text. After subjecting the systems to different noise environment= s, it was observed that the system with the highest performance in transcripts= was Amazon Transcribe; therefore, it was concluded that Amazon services showed a higher performance compared to Google services both with audios with a high= er background noise level and with audios with a lower background noise level<= /span>.

 

Keywords: Amazon Transcribe, ASR, Google Speech to Text, transcripton, WER.=

 

Introducción<= /span>

Dentro del = dominio de la inteligencia artificial, el reconocimiento automático de voz (ASR) permite la comunicación entre el humano y la máquina, tratando de asemejar = al máximo, la forma en que los humanos interactúan entre sí (Këpu= ska, 2017). Anteriormente, el lenguaje humano no= se consideraba una variante importante entre la comunicación humano - máquina, debido a que no existía una tecnología que cumpliera con los parámetros necesarios para el desarrollo y la implementación en casos de la vida real = (Yu D= ong, 2015). Los parámetros importantes que se de= ben tener en cuenta en el proceso de reconocimiento de voz son el retraso y la precisión, ya que afectan a la calidad de la experiencia del usuario de dic= hos servicios (Asse= fi et al., 2015). Los sistemas de reconocimiento de vo= z van avanzando y mejorando con el tiempo, de tal forma que estos sistemas realiz= an tareas de transcripción con una precisión que bordea el 90% (Mash= ao et al., 2010). En la actualidad, son muchas las emp= resas que optan por implementar el reconocimiento de voz en sus servicios, ya sea= por la comodidad que ofrecen al momento de realizar ciertas tareas o porque cada año la tasa de error va descendiendo, lo que provoca que estos servicios se= an mucho más eficaces y confiables.

 =

Empresas como Microsoft, IBM, Google y Amazon desarrollan plataformas que ofrecen  servicios en la nube y= que utilizan algoritmos ASR (IANCU, 2019). Microsoft utiliza Azure Cloud Service, el cual brinda la posibilidad de transcribir a texto l= os datos de audio en tiempo real, o por otro lado, permite subir archivos almacenados en el dispositivo del cliente para transcribirlos (Microsoft, 2011). La empresa IBM cue= nta con el servicio llamado IBM Cloud Speech to Text, el cual ofrece a l= os clientes la posibilidad de transcribir archivos de audio de una forma conti= nua y con baja latencia; la empresa ofrece servicios estándar y premium = (Service et al., 2019), finalmente está Go= ogle con el servicio denominado Google Cloud Speech-to-Text. <= /p>

 

El presente trabajo tiene como objetivo la comparación entre las dos grandes empresas que se posicionan en el mercado del reconocimiento de voz,= es el caso de Google y Amazon. Google con el servicio de Google Cloud Speech-to-Text trabaja en la Web y permite cargar archivos de audio o procesar sonidos en tiempo real. El servicio de Google proporciona a los usuarios la posibilidad de escoger el idioma y permite la detección de contenido inadecuado o vulgar mediante filtros (Morbini et al., 2013). Google Speech-to-T= ext también ofrece otras características como la detección automática de idioma= s o el reconocimiento automático de puntuación (IANCU, 2019). El servicio Amazon Transcribe, de la empresa Amazon, es una herramienta que ofrece a los consumidores la capacidad de agregar funciones de transformación de voz a t= exto en sus aplicaciones. Amazon Transcribe también utiliza el reconocimi= ento automático de voz (ASR) para generar transcripciones rápidas y de gran cali= dad (Amazon, n.d.).<= /p>

 

Por otra parte, la necesidad de realizar tareas de transcripción automática var= ía de acuerdo al dominio que es usado. Un caso puntual son los centros de coma= ndo y control (C2s), conocidos comúnmente como centros de operaciones, las cual= es son entidades de orden público que tienen la función de recopilar los datos provenientes de sensores o cámaras de monitoreo, que se encuentran distribu= idos por todo el territorio nacional, toda la información que se recolecta se almacena para ser procesada y analizada a través de un conjunto de platafor= mas que ayudan en la toma de decisiones (Muse et al., 2020). En complemento a estas t= areas, los C2 reciben constantemente llamadas de la comunidad en busca de despachos para emergencias o de soporte policial.

 

Este estudio realiza una comparativa, que permite evaluar las características de= los productos existentes al sistema integrado de seguridad ECU 911, que es la entidad encargada de organizar y dar respuesta ante las situaciones de emergencia que se puedan presentar en el territorio nacional, coordinando la atención con los diferentes organismos en caso de siniestros o desastres. E= sta entidad proporciona las grabaciones relacionadas con las alertas emitidas, = las cuales se analizan para su registro y codificación considerando las particularidades de cada región. Además, una vez concluidas las configuraci= ones y entrenamientos necesarios, se determina que producto ofrece una mayor precisión al momento de convertir el audio a texto. También, se evalúa la calidad de las transcripciones de las herramientas utilizadas con relación = a las transcripciones realizadas por humanos.

 

Este estudio se organiz= a de la siguiente manera: En la Sección 2 se presentan los trabajos relacionados= , en la Sección 3 se explica la metodología que se usó para realizar las pruebas= , en la Sección 4 se muestran los resultados obtenidos y en la Sección 5 se expo= nen las conclusiones.

 

Trabajos relacionados

En el campo = de la conversión de voz a texto, existen varios aportes, mismos que abordan la evaluación de ciertos factores clave, que influyen en la calidad del result= ado ofrecido. Sin embargo, estos sistemas trabajan con idiomas como el rumano, inglés o japonés. Dichos estudios consideran factores como el nivel de ruid= o o la tasa de error de las palabras convertidas. Los trabajos que se presentan= a continuación se relacionan directamente con los métodos de evaluación y las tareas de transcripción.

 <= /o:p>

En Këpuska (= 2017), se diseña una herramienta que permite comparar varios sistemas de reconocimiento automático de voz (ASR) como Microsoft Speech Api, Google Sp= eech Api y Sphinx-4, que son ASR de código abierto. Para ello, se utilizan grabaciones de diferentes fuentes, en idioma inglés, para calcular la tasa = de error de palabras (WER) y la exactitud de las mismas. Allí, se determina qu= e la API de Google fue superior.

 <= /o:p>

En el trabaj= o que realiza Kimura et al. (2018) se utiliza la métrica WER para comparar el rendimiento entre los ASR de Kaldi y la API de Google. Para el estudio se emplean audios de habla japonesa en tiempo real, lo que permite concluir qu= e el ASR de Kaldi muestra una alta precisión de reconocimiento cuando los datos = se encuentran en un dominio cerrado y el nivel de ruido en los audios no es al= to. En su lugar, el API de Google presenta una gran precisión y estabilidad en varios entornos y dominios, así como un tiempo de respuesta mucho menor. En Filippidou y Moussiades (2020), se compara la precisión de Google respecto a IBM Watson y Wit, utilizando WER junto con los cálculos de la tasa de error= de palabras independiente de la posición de hipótesis (Hper) y la tasa de erro= r de palabras independiente de la posición de referencia (Rper). Concluyen que el ASR de Google es más eficaz que los otros sistemas evaluados.

 <= /o:p>

En (IANCU, 2= 019), se evalúa la API de Google Cloud Speech-to-Text, utilizando vídeos disponibles= de YouTube en rumano.  Los datos que se obtienen se indexan para transformarse en material para búsquedas.  El autor utiliza WER para medir la prec= isión del contenido multimedia y concluye que los resultados para la indexación de estos recursos son satisfactorios. En el trabajo de Kodish-Wachs et al, (Kodish-Wachs et al., 2018) los autores desarrollan una comparación sistemá= tica de ASR aplicada al lenguaje clínico convencional. En el estudio se usan aud= ios grabados de escenarios clínicos y se evalúan ocho motores de ASR usando la = tasa de error de palabra (WER). Como resultado se encuentra que los motores de A= SR generan una amplia gama de errores de palabras.

 <= /o:p>

Por otro lad= o, en Assefi, Liu, et al. (2015), comparan dos sistemas basados en la nube, Apple Siri y Google Speech Recognition (GSR), evaluando los sistemas de acuerdo a= los parámetros de retraso y precisión de las transcripciones de cada herramient= a. Se llega a la conclusión de que los sistemas que están basados en la nube s= on afectados por la pérdida de paquetes o por la fluctuación que se da comúnme= nte en sistemas conectados a la red inalámbrica y celular. En Assefi, Wittie, et al., (2015), se estudian los mismos sistemas de reconocimiento de voz basad= os en la nube, y se evalúa el rendimiento ante varias situaciones de red, en parámetros de precisión de reconocimiento de comandos y retardo de ida y vuelta. Los resultados obtenidos son similares a los detallados anteriormen= te (Assefi, Liu, et al., 2015); sin embargo, se propone una solución de transp= orte de codificación de red para aumentar la calidad de las transmisiones de voz= .

 <= /o:p>

En Wang (201= 9), se realiza un estudio sobre el reconocimiento de emociones basado en un modelo= de red neuronal convolucional y recurrente (ARCNN), que es aplicado a diálogos telefónicos de atención al cliente. El modelo se entrena con el texto convertido de la voz del teléfono del cliente mediante la API de transcripc= ión de Amazon. Así también, en Munot y Nenkova, (2019), se analiza cómo las emociones en los diálogos influyen en el desempeño de los sistemas. Se conc= luye que el rendimiento de los sistemas de reconocimiento depende de factores co= mo el contenido léxico, la identidad del hablante y el dialecto. Se evalúan va= rias aplicaciones comerciales de compañías como Amazon, IBM y Google.=

 <= /o:p>

En Mashao et= al., (2010), se realiza una investigación para la implementación del reconocimie= nto de voz aplicado a dispositivos móviles, bien sea en red o con reconocimient= o de voz distribuido. Se llega a la conclusión de que el reconocimiento distribu= ido obtiene una mayor precisión.

 <= /o:p>

Como se anal= iza, existen múltiples estudios de evaluación y comparación de sistemas de reconocimiento automático de voz (ASR); sin embargo, no se precisan estudio= s de comparación de dos grandes empresas como Google y Amazon.  Tampoco se encuentran trabajos relacion= ados al reconocimiento de voz aplicado a los centros de comando y control, ni soluciones dirigidas al idioma español. Por ello, el presente estudio se ce= ntra en evaluar los sistemas de reconocimiento automático de voz de las empresas Google y Amazon, mediante grabaciones de audio en situaciones de emergencia, determinando su calidad con respecto a transcripciones realizadas por human= os.

 

Metodología

La meto= dología empleada durante el proceso de comparación estuvo conformada por cuatro actividades detalladas en la Figura 1. Estas actividades utilizaron como entrada los datos provenientes de la recopilación de llamadas de emergencia realizadas al Servicio Integrado de Seguridad ECU 911, los registros de llamadas incluían tanto el audio como su transcripción manual.

 

Figura <= /span>1<= /span>=

Actividades relacionadas a la met= odología de evaluación de los sistemas ASR

3D"Diagrama

Descripción

 

 

Planificación de Trabajo

En esta actividad se detallan los pasos para configura= r el entorno de trabajo, como se puede observar en la Figura 2.

 =

Figura <= /span>2<= /span>=

Esquema de Planificación de Traba= jo

3D"Imagen

 =

Se creó una cuenta en Google Cloud para tener acceso al servicio de Google Speech to Text.  Debido a que la mayoría de audios tenían una duración superior a un minuto, se generó un storage en donde se almacenaron estos datos.  Por otra parte, se creó una cuenta en l= os servicios Web de Amazon para poder tener acceso a los servicios de Amazon Transcribe, se precisó un espacio de almacenamiento para los audios (bucket= ) y se generó un espacio de trabajo para realizar las transcripciones (transcri= ption job).

 

Finalmente, se creó un entorno de trabajo en Google Collaboratory, se trata de un documento compartido al cual se puede acceder desde cualquier dispositivo y que permite trabajar con el lenguaje de programación Python sin la necesidad de descargar ningún programa.  En este documento se implementó tanto l= a API de Google Speech to Text como la API de Amazon Transcribe.

 

Preparación y Preprocesamiento de Dato= s

En la Figura 3, se detallan los pasos para la preparación y el preprocesamiento de los dato= s.

 

Figura <= /span>3<= /span>=

Esquema de Preparación y Preproce= samiento de Datos

3D"Imagen

 

Se analizó el Dataset proporcionado por el ECU 911, el= mismo que contaba con diversos campos tales como: nombre del archivo de los audio= s, la dirección y las transcripciones, tanto del operador como del alertante.<= /p>

 

Las distintas herramientas analizadas requerían que el archivo de audio fuera de 16 bits y que el canal del audio fuera estéreo (2 canales).  Como parte de ajuste del requerimiento se pudo utilizar el software Fassoft Video Converter para modificar la codificación de las llamadas según las características deseada= s.

 

Para continuar, se dividieron los archivos de audio en= dos categorías.  En la primera categorí= a se agruparon los audios que no contenían un alto nivel de ruido de fondo y en = la segunda categoría se agruparon los audios que tenían un mayor nivel de ruid= o de fondo.

 

Configuración del = Ambiente

En la actividad que se presenta en la Figura 4, se detalla la creación de los Scripts para la transcripción tanto para Goog= le como para Amazon.

 

Figura <= /span>4<= /span>=

Esquema de Configuración del Ambi= ente

3D"Diagrama

Descripción

 =

Se creó el Script para la codificación e implementació= n de la API de Google, el cual permitió realizar las transcripciones de los audi= os. Para que la comparación esté dentro de los mismos parámetros fue necesario configurar la transcripción resultante, para lo cual se eliminaron todos los signos de puntuación, así como se utilizó un método lowercase el cual retornó todas las palabras en minúsculas.

 

Por otra parte, Amazon permitió realizar las transcrip= ciones desde sus servicios Web (AWS), esta proporcionó un archivo de formato JSON = con la transcripción del audio. Para el análisis del mismo se creó un Script que permitió configurar la transcripción resultante para igualar a los parámetr= os anteriormente señalados, donde se utilizó un método replace para reemplazar los signos de puntuación por espacios en blanco y el método lowercase que permitió dejar el texto en minúsculas.

 = ;

Definición del modelo de calificación<= /span>

Para medir la efectividad de las transcripciones a tex= to de los dos servicios antes mencionados se utilizó el cálculo de la tasa de err= or por palabras (WER).  El cual, en pr= imera instancia, tomó un texto de referencia que contenía la transcripción del au= dio sin ningún error.  Posteriormente, = se consideró un texto de análisis el cual fue generado a partir de las transcripciones realizadas por los servicios de Google y Amazon.  Se compararon los dos textos tomando en cuenta las palabras que fueron eliminadas, cambiadas y añadidas.  Este cálculo dio como resultado el porc= entaje de error de las transcripciones respecto al texto de referencia. El cálculo= del WER se dio bajo la siguiente fórmula:

 

=

 

Donde (I) son las palabras insertadas, (D) son las pal= abras eliminadas, (S) son las palabras que se sustituyeron y (N) es el total de palabras del texto de referencia.

 <= /o:p>

Resultados

La Tabla = 1muestra los resultados que se obtienen para la tasa de error por palabra (WER) de 10 audios proporcionados por el sistema ECU911, los cuales no contienen ruido = de fondo. El índice de WER que logra la API de Amazon Transcribe es menor que = el índice que alcanza la API de Google Speech to Text, es decir la API de Amaz= on es más efectiva al momento de realizar las transcripciones en comparación a= la API de Google.

 

Tabla 1<= /span>=

Resultados de las Transcripciones= (Sin Ruido de Fondo)

Nom= bre del archivo

Goo= gle Speech to Text

Ama= zon Transcribe

WER= (%)

f58a547c-b= 84b-4d46-b2cfd2d5f21f8d2b

0,57

0,48

f2a3ae7f-aa13-4742-8030-82a274be4405=

0,28

0,21

dddd5d0c-4453-4389-b960-fed73caa2bf7=

0,38

0,34

d0fa229f-a710-46= 5d-ac3f-d701a05ab071

0,52

0,51

cd82b677-0732-424e-a432-cc039c1eb520=

0,48

0,41

9544243b-fc6a-4c1c-b622-c6812828d519=

0,49

0,48

91ddd3ad-1= ebf-43ca-b628-9f425c83d65b

0,47

0,48

56d63c4d-d64c-4022-bd4e-688c1f3a45b4=

0,39

0,36

49bbd185-9b67-4355-b504-600a064f1049=

0,49

0,34

45a51110-078a-4e5b-9366-196f4f12c3ce=

0,43

0,43

Med= ia

0,4= 5

0,40

 =

 

 

Figura 5

 

La Figura 6, presenta un histograma de los resultados que se obtienen de la API de Google Speech to Text de los audios que no presentan ruido de fondo.  Se puede observar que existe una frecue= ncia mayor para los resultados que oscilan entre el 41 y 54 por ciento de WER.

 =

Figura <= /span>6<= /span>=

Histograma de las Transcripciones= de Google (Sin Ruido de Fondo)

3D"Gráfico,

 

En la Figura 7, se observa el histograma con los resultados que se obtienen de la API de Am= azon Transcribe de los audios que no presentan ruido de fondo, donde se puede observar que la mayor frecuencia se encuentra entre el 36 y 51 por ciento de WER.

 

Figura <= /span>7<= /span>=

Histograma de las Transcripciones= de Amazon (Sin Ruido de Fondo)

3D"Gráfico,

 =

La Tabla = 2 muestra los resultados que se obtiene para la tasa de error por palabra (WE= R) de cada uno de los audios del estudio. Se consideran elementos con un ruido= de fondo más intenso para observar el comportamiento de las API en diferentes escenarios. El índice WER que se logra por la API de Amazon Transcribe es m= enor que el índice WER que se obtiene por la API de Google Speech to Text, es de= cir, la API de Amazon una vez más tiene mayor efectividad al momento de realizar= las transcripciones en comparación a la API de Google.

 

Tabla 2<= /span>=

Resultados de las Transcripciones= (Con Ruido de Fondo)

Nombre del archivo<= o:p>

Google Speech to Te= xt

Amazon Transcribe

WER (%)<= /span>

c4095c6e-e4d1-44c2-a03d-6b007269da15

0,66

0,65

cdf112ec-4be5-4aa0-9a8e-b5da95320660

0,52

0,50

ce0685b3-1c76-4e19-ae50-1e59c64d4f98

0,63

0,54

d3d7d6b5-8b04-4778-96d6-98f638fa05c1

0,68

0,52

e185a546-a73f-4dbf-90b7-64c32edf= cb74

0,54

0,64

edb78b82-e5af-4892-b429-be2fe23af8be

0,65

0,55

f42dbd3a-890b-4df0-836d-21a6d021= 6255

0,62

0,68

fa66d704-aacb-4333-a847-03badd6f08f7

0,68

0,54

fa9148cf-5020-4992-b1ab-c59806508da8

0,64

0,62

fcb4f4eb-4c21-45d9-ba71-321b0a1b= 3aab

0,59

0,43

Media

0,62

0,58

 

 

Figura 8

 =

 =

En la Figura 9. Se muestra el histograma de los resultados de la API de Google Speech to Te= xt con audios que contienen ruidos de fondo, donde se puede observar que existe una mayor frecuencia en los resultados del WER que varían entre el 61 y 70 = por ciento.

 

Figura <= /span>9<= /span>=

Histograma de las Transcripciones= de Google (Con Ruido de Fondo)

3D"Gráfico,

 =

En la Figura 10, se muestra el histograma de los resultados de la API de Amazon Transcribe c= on audios que contienen ruidos de fondo, donde se puede observar que existe una mayor frecuencia en los resultados del WER que varían entre el 43 y 56 por ciento.

 

Figura <= /span>10= =

Histograma de las Transcripciones= de Amazon (Con Ruido de Fondo)

3D"Gráfico,

 

Conclusiones

Como parte de las conclusiones se pu= ede identificar consideraciones a tener en cuenta para el procesamiento de los audios, tales como la separación de los canales, problemas de interferencia entre los dos interlocutores y en la codificación de los bits de los audios. Estos aspectos deben ser mejorados para elevar la calidad de los sistemas A= SR en tareas de transcripción.

 

Con base en los resultados del estudio, los servicios = de Amazon alcanzan una media de error del 40%, mientras que los servicios de Google alcanzan un 45% de media de error en aquellos audios que no contienen ruido de fondo. En audios con mayor ruido de fondo, los servicios de Amazon= vuelven a tener un valor menor de tasa de error con un 58%, en comparación al 62% de los servicios de Google.

 

Se puede concluir que los servicios de Amazon muestran= una mayor eficiencia respecto a los servicios de Google tanto con audios con un nivel de ruido de fondo más alto como en audios con un nivel de ruido de fo= ndo más bajo. El método de evaluación como los resultados que logra este estudio pueden ser considerados por otros trabajos que se enfoquen a realizar tarea= s de transcripción automática. Como trabajo futuro se propone buscar técnicas que mejoren la calidad de los audios, que permitan eliminar el ruido y elevar la claridad de la voz para una óptima transcripción.

 

Se planifica realizar, como próximos pasos, la compara= ción con otras herramientas tales como Microsoft e IBM. Además, se espera realiz= ar una medición de otros aspectos como los modelos internos de cada uno de los servicios que se estudian, el tipo de redes neuronales que utilizan, anális= is de corpus, arquitectura; además, características de calidad tales como: precisión, confiabilidad, eficiencia, entre otros.

 <= /o:p>

Agradecimientos

Los autores desean agradecer al Vicerrectorado de Investigaciones de la Universidad del Azuay por el apoyo financiero y académico, así como a todo el personal de la escuela de Ingeniería de Siste= mas y Telemática, y el Laboratorio de Investigación y Desarrollo en Informática (LIDI).

 =

Referencias

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