Questões de Língua Inglesa da CESPE / CEBRASPE

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Listagem de Questões de Língua Inglesa da CESPE / CEBRASPE

#Questão 1078398 - Língua Inglesa, Interpretação de texto | Reading comprehension, CESPE / CEBRASPE, 2025, EMBRAPA, Pesquisador – Área: Ciências da Saúde – Subárea: Nutrição

        Many studies reveal the contributions of plant breeding and agronomy to farm productivity and their role in reshaping global diets. However, historical accounts also implicate these sciences in the creation of new problems, from novel disease vulnerabilities propagated through industrial monocrops to the negative ecological and public health consequences of crops dependent on chemical inputs and industrialized food systems more generally.


        Increasingly, historical analyses also highlight the expertise variously usurped, overlooked, abandoned, or suppressed in the pursuit of “modern” agricultural science. Experiment stations and “improved” plants were instruments of colonialism, means of controlling lands and lives of peoples typically labeled as “primitive” and “backward” by imperial authorities. In many cases, the assumptions of colonial improvers persisted in the international development programs that have sought since the mid-20th century to deliver “modern” science to farming communities in the Global South.


        Awareness of these issues has brought alternative domains of crop science such as agroecology to the fore in recent decades, as researchers reconcile the need for robust crop knowledge and know-how with the imperatives of addressing social and environmental injustice. 


Helen Anne Curry; Ryan Nehring. The history of crop science and the future of food.

Internet: <nph.onlinelibrary.wiley.com> (adapted).

Judge the following item about the text above.


According to the text, the farming communities in the Global South are no longer under the assumptions typical of the “international development programs” created in the 20th century. 

        In the 20th century, we made tremendous advances in discovering fundamental principles in different scientific disciplines that created major breakthroughs in management and technology for agricultural systems, mostly by empirical means. However, as we enter the 21st century, agricultural research has more difficult and complex problems to solve.


        The environmental consciousness of the general public is requiring us to modify farm management to protect water, air, and soil quality, while staying economically profitable. At the same time, market-based global competition in agricultural products is challenging economic viability of the traditional agricultural systems, and requires the development of new and dynamic production systems. Fortunately, the new electronic technologies can provide us a vast amount of real-time information about crop conditions and near-term weather via remote sensing by satellites or ground-based instruments and the Internet, that can be utilized to develop a whole new level of management. However, we need the means to capture and make sense of this vast amount of site-specific data.


        Our customers, the agricultural producers, are asking for a quicker transfer of research results in an integrated usable form for site-specific management. Such a request can only be met with system models, because system models are indeed the integration and quantification of current knowledge based on fundamental principles and laws. Models enhance understanding of data taken under certain conditions and help extrapolate their applications to other conditions and locations.


Lajpat R. Ahuja; Liwang Ma; Terry A. Howell. Whole System Integration and Modeling — Essential to

Agricultural Science and Technology in the 21st Century. In: Lajpat R. Ahuja; Liwang Ma; Terry A. Howell

(eds.) Agricultural system models in field research and technology transfer.

Boca Raton, CRC Press LLC, 2002 (adapted).

Considering the text presented above, judge the following item. 


The use of “However”, in the last sentence of the second paragraph, helps to indicate that the vast amount of data that technology can provide is not enough to meet the needs of agricultural producers. 

#Questão 1082138 - Língua Inglesa, Tradução | Translation, CESPE / CEBRASPE, 2025, EMBRAPA, Analista - Área: Gestão da Informação - Subárea: Gestão da Informação Edição - Inglês/Português

Com relação à tradução técnica, julgue o item seguinte.


O trecho “From a weedy plant called teosinte with an ‘ear’ barely an inch long has come our foot-long (0.3-meter-long) ears of sweet white and yellow corn”, adaptado do texto Food: how altered?, pode ser adequada e corretamente traduzido para o português da seguinte forma: De um arbusto chamado teosino, cuja espiga mal chegava a uma polegada veio o milho branco e o amarelo, com espigas de um pé (0.3 metro) de comprimento. 

#Questão 1078395 - Língua Inglesa, Tradução | Translation, CESPE / CEBRASPE, 2025, EMBRAPA, Pesquisador – Área: Ciências da Saúde – Subárea: Nutrição

        In the 20th century, we made tremendous advances in discovering fundamental principles in different scientific disciplines that created major breakthroughs in management and technology for agricultural systems, mostly by empirical means. However, as we enter the 21st century, agricultural research has more difficult and complex problems to solve.


        The environmental consciousness of the general public is requiring us to modify farm management to protect water, air, and soil quality, while staying economically profitable. At the same time, market-based global competition in agricultural products is challenging economic viability of the traditional agricultural systems, and requires the development of new and dynamic production systems. Fortunately, the new electronic technologies can provide us a vast amount of real-time information about crop conditions and near-term weather via remote sensing by satellites or ground-based instruments and the Internet, that can be utilized to develop a whole new level of management. However, we need the means to capture and make sense of this vast amount of site-specific data.


        Our customers, the agricultural producers, are asking for a quicker transfer of research results in an integrated usable form for site-specific management. Such a request can only be met with system models, because system models are indeed the integration and quantification of current knowledge based on fundamental principles and laws. Models enhance understanding of data taken under certain conditions and help extrapolate their applications to other conditions and locations.


Lajpat R. Ahuja; Liwang Ma; Terry A. Howell. Whole System Integration and Modeling — Essential to

Agricultural Science and Technology in the 21st Century. In: Lajpat R. Ahuja; Liwang Ma; Terry A. Howell

(eds.) Agricultural system models in field research and technology transfer.

Boca Raton, CRC Press LLC, 2002 (adapted). 

Considering the text presented above, judge the following item.


An acceptable translation into Portuguese of the first sentence of the text could be: No século XX, devido ao uso de meios empíricos, houve avanços tremendos no que diz respeito à descoberta de princípios fundamentais em diferentes áreas acadêmicas, o que levou a um progresso no manejo, na tecnologia e nos sistemas agrícolas. 

#Questão 1086342 - Língua Inglesa, Interpretação de texto | Reading comprehension, CESPE / CEBRASPE, 2025, ANM, Analista Administrativo - Especialidade: Qualquer Área de Formação

        For the first time, 2025 will see quantum computers leave labs and research institutions and actually deploy into the networks and data centers of real-world customers. For quantum computing companies, this will be a real test of steel.

        It’s one thing to have a groundbreaking, powerful quantum computer that only works on its very best day — when the lab conditions are perfect and when the team of PhDs operating it are at the top of their game. But the reality is that quantum computers need to work on their worst days too — in the real world, in real organizations. The quantum computing companies that land on top will be the ones that have built for this challenge since day one.

        People tend to hear the words “quantum computing” and jump straight to science fiction or the multiverse. And while it seems daunting, we’ve actually reached a point where the “quantum” part of quantum computing is the easiest bit — it’s the “computing” that is inherently complex. For those on the front lines of building powerful quantum computers, this means it’s no longer a physics challenge — it’s an engineering one.

        Companies won’t need to know the ins and outs of quantum computers in order to leverage its unprecedented power — they’ll simply benefit from its ability to solve the problems that could never be solved on classical computers.


Internet:<thequantuminsider.com>  (adapted). 

Regarding the text, judge the following item.


Users will not need to understand the inner workings of quantum computing to benefit from its power.

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