Telugu News: Agricultural: A new agricultural policy is needed for the welfare of small farmers
Agricultural ప్రొఫెసర్ జయశంకర్ తెలంగాణ వ్యవసాయ విశ్వవిద్యాలయం (PJTSAU) మరియు తెలంగాణ ఉద్యమకారుల ఐక్యవేదిక ఆధ్వర్యంలో గురువారం.

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Telugu News: Agricultural: A new agricultural policy is needed for the welfare of small farmers
Agricultural ప్రొఫెసర్ జయశంకర్ తెలంగాణ వ్యవసాయ విశ్వవిద్యాలయం (PJTSAU) మరియు తెలంగాణ ఉద్యమకారుల ఐక్యవేదిక ఆధ్వర్యంలో గురువారం.
In Climate-Exposed Nepal, Farmers Hold Firm to Agriculture Despite Escalating Risks!
Penn State-led study reveals how perceptions of climate threats shape livelihoods in disaster-prone regions UNIVERSITY PARK, Pa. In the fertile yet climate-fragile Chitwan Valley of Nepal, small-scale farmers face a mounting challenge: floods, droughts, and other extreme weather events are eroding the stability of crop yields. Logic might suggest that such pressures would drive many to seek…
The 12 Most Mind-Blowing Ways AI Is Innovating In Farming
The agricultural sector is developing thanks to artificial intelligence (AI), which is transforming our farming practices, from sowing to harvesting. As we can see today, the world's growing population is only getting stronger, and climate change is bringing new challenges that we need to address, which is why we need artificial intelligence not just in finance or machine learning, but also in agriculture, because we need it to increase crop yields, to conserve resources and also to create food systems that will be more sustainable. This article explores the current state and future potential of AI in agriculture, drawing on expert opinion and real-life examples.
Why innovation is needed in agriculture ?
According to the Food and Agriculture Organization of the United Nations (FAO), quoted by Forbes, the world is going to have to produce 60% more food than we have by 2050 in order to feed a projected population of 9.3 billion. But right now, there are a number of major challenges in the agricultural sector that may mean that this goal will (perhaps) never be reached. At least for the time being.Rajesh Singh, professor at Lovely Professional University and co-author of "Artificial Intelligence in Agriculture", underlines just how urgent this situation is: "The agricultural industry is at a critical juncture. Traditional farming methods are struggling to keep pace with growing demand and environmental pressures. AI offers a promising path forward, but its implementation must be thoughtful and inclusive."The current challenges facing agriculture are as follows:1. Pest damage: According to Forbes, pests destroy around 40% of everything produced in agriculture every year, causing losses of at least $70 billion. Their impact is widespread, with locusts in Africa and fruit flies damaging orchards all over the world, so it's damage that also affects the economy.2. Soil degradation: According to Forbes, nearly 33% of the world's soils are degraded, reducing their capacity to support crop growth. This results in an estimated loss of around $400 billion a year.3. Water scarcity: Again according to Forbes, agriculture uses 70% of the world's fresh water, but 60% of this is wasted through leaky irrigation systems and inefficient farming practices.4. Weed proliferation: According to Forbes, some 1,800 weed species reduce crop production by around 31.5%, resulting in economic losses of around $32 billion a year.5. Post-harvest losses: The World Economic Forum notes that in countries like India, 40% of produce is lost in the supply chain due to inadequate storage, transport and market access. These problems are particularly acute for small-scale farmers. Anita Gehlot, co-author of "Artificial Intelligence in Agriculture", explains "Smallholder farmers, who produce a significant portion of the world's food, often lack access to advanced technologies and face disproportionate risks from climate change and market fluctuations. AI solutions must be designed with their needs in mind." The World Economic Forum gives us a sad example of the challenges with the story of Krishna, a small farmer from Telangana, India. He actually cultivates an acre of land, but Krishna earns just $120 a month - not even enough to give his family what they fundamentally need. For Krishna and millions of others like him, farming is a gamble that involves enormous risks, and it doesn't pay very well. That's why we're all asking the same question
How is AI revolutionizing agriculture?
Thanks to artificial intelligence and other AI-dependent technologies such as machine learning, computer vision and the Internet of Things (IoT), we have other ways of making these long-standing agricultural challenges a distant memory. As Mahesh Kumar Prajapat, also co-author of "Artificial Intelligence in Agriculture", notes: "AI's ability to process vast amounts of data, recognize patterns, and make predictive analyses is being applied across the entire agricultural value chain, from soil preparation to post-harvest logistics."Let's see how AI is transforming different aspects of agriculture: 1. Crop and soil management: Thanks to AI, the way farmers monitor and manage their crops and soils is going to change completely. -Crop yield prediction through AI:in effect, this means that learning algorithms have the ability to analyze historical data, weather patterns, soil conditions and satellite imagery to predict crop yields with an accuracy that will only increase.This gives farmers greater clarity when it comes to planting, and can even extend to resource allocation and harvest scheduling. There's also- Machine learning for pest and disease detection: Image-recognition systems powered by artificial intelligence can detect any signs of pest or disease infestation in crops, and that's before humans can notice anything. I'd also like to mention Automated irrigation systems:If AI starts analyzing soil humor levels, weather forecasts and crop water requirements, it could perhaps make irrigation better. According to forbes,CropX, a company specializing in precision agriculture, reports that thanks to their AI solutions, they have been able to reduce water use by 57%, while at the same time increasing yields by up to 70%.Crop monitoring by drone: which can rapidly survey large areas and provide information on crop health, growth patterns and problems that can appear in great detail. AI-assisted soil health analysis:here, if machine learning models happen to analyze soil samples and sensor data, they will potentially be able to give information on soil composition, nutrient levels and overall health at depth.2. Livestock managementBhupendra Singh, also co-author of "Artificial Intelligence in Agriculture", talked about how AI could impact livestock farming."AI is transforming livestock management through advanced monitoring and predictive analytics, leading to improved animal welfare and productivity."Among the main applications we have, for example, the: AI-assisted animal health monitoring:here we may be talking about how wearable captures and AI algorithms can monitor vital signs, movements and the way animals behave in relation to their feed in order to detect early signs of disease, there are also:Automated feeding systems:where AI can choose the best feeding times and portions according to each animal's needs, improving nutrition and at the same time reducing waste. And let's not forget Behavioral analysis: in this case, it analyzes the way animals behave in order to predict certain events in advance, such as estrus in dairy cows, enabling us to set up more effective breeding programs.3. Farming The AI organizes the overall management and operations of the farm:Resource optimization: this involves enabling algorithms to analyze different data streams, so that they can optimize the way in which resources such as water, fertilizers and labor are used throughout the farm. Weather forecasting: that's nothing new! I think many of you already know that AI is capable of giving us weather forecasts in every locality, and this could help farmers to make important decisions about planting, for example: when to plant? When not to? How to do it? When to do it? There will also be important decisions to make when harvest time comes, and other decisions too about how to protect crops. That's why there's Agricultural data analysis: made possible by AI-powered dashboards. And what's important to know here is that since they are in a position to integrate data that comes from different sources (sensors, machines, market prices), they will be able to provide farmers with information that they can use and thus make the way they make decisions much better.4. Supply chain managementAI improves efficiency and transparency throughout the agricultural supply chain:Blockchain for traceability:blockchain solutions can track agricultural products from farm to fork, thereby enhancing food safety and enabling consumers to check where their food comes from and where it has been before it reaches their plates.AI-enabled inventory management: we could optimize stock levels with artificial intelligence, thereby reducing waste and ensuring that agricultural products are delivered as quickly as possible..Demand forecasting:we'll be able to analyze market trends, the way consumers behave and other external factors to know in advance which agricultural products will be in greatest demand, so farmers and distributors can plan better.
In fact, AI in agriculture is also having a certain impact in the real world, as it..
...is already being felt worldwide. Here are a few compelling examples:1. Precision weeding: according to Forbes, the LaserWeeder, an AI-powered weeding system, claims to eliminate up to 5,000 weeds per minute with 99% accuracy. Farmers using this technology say they have been able to cut their weeding costs by up to 80%, and they have a return on investment that can be made in as little as one to three years!2. Empowering small-scale farmers:The World Economic Forum had mentioned in their article an 18-month pilot program that was done in India to test digital advisory services that used artificial intelligence and was aimed at small-scale farmers, and the results they got were insane.- Net income doubled to $800 per acre in a single crop cycle (6 months). - Chili production increased by 21% per acre. - Pesticide use decreased by 9%. - Fertilizer use decreased by 5%. - Crop price increased by 8% because of improved quality. - Crop yields increased by 23%. - Water use was reduced by 30%. - Fertilizer and pesticide use were reduced by 20% and 50% respectively. - Overall profitability improved by 35%. - The farm's carbon footprint has been reduced by around 25%.Rajesh Singh comments on this case study: "This example illustrates the holistic impact AI can have on farm operations. It's not just about individual technologies, but how they work together to create a more efficient, productive, and sustainable farming system.”
Conclusion: The changing face of agriculture
In the future, it's clear that AI will play an increasingly central role in agriculture. From small farms in India to large industrial farms in the USA, AI technologies are helping farmers to produce more food with fewer resources, while reducing their impact on the environment.Anita Gehlot concludes: The integration of AI in agriculture represents a paradigm shift in how we approach food production. However, as we embrace these technologies, we must ensure that their benefits are widely shared and that we don't lose sight of the fundamental connection between humans and the land."As we move into this new era of algorithmic agriculture, we must strive to ensure that the benefits of these technologies are widely shared, that their implementation is environmentally sustainable, and that they serve to enhance rather than replace the rich tradition of human agricultural knowledge. In so doing, we will be able to write a new chapter in the age-old history of human agriculture, one in which silicon and soil work together to feed the world.The authors of "Artificial Intelligence in Agriculture" remind us that, while artificial intelligence offers powerful tools for tackling the challenges facing agriculture, it is not a panacea. Its successful implementation will require ongoing research, thoughtful policymaking and a commitment to inclusive development that benefits farmers at every scale and in every region.At the intersection of traditional farming wisdom and cutting-edge technologies, the future of agriculture promises to be both exciting and complex. By harnessing the power of AI responsibly and equitably, we have the opportunity to create a more resilient, sustainable and productive global food system for generations to come. Read the full article
🌾 Exploring the Farmer Uprising in the EU: Unveiling Grievances and Victories 🌱
Dive into the heart of the recent farmer protests sweeping across the European Union! From soaring economic pressures to import woes and environmental challenges, this post uncovers the multifaceted issues driving farmers to the streets.
Discover how governments are responding, the concessions being made, and the remarkable victory achieved by French farmers. Join the conversation on the future of European agriculture! 🚜🌍 #EUfarming #FarmerProtests #EnvironmentalChallenges #EuropeanUnion #AgriculturalPolicy 🌾🌱
📹 Watch Now: https://youtu.be/pwz6_BBrC6Y
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