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International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056
Volume: 09 Issue: 05 | May 2022 www.irjet.net p-ISSN: 2395-0072
© 2022, IRJET | Impact Factor value: 7.529 | ISO 9001:2008 Certified Journal | Page 1925
“Plant Disease Detection by Using Deep LearningAlgorithm with
Product, Price Recommendation and Crop prediction.”
Shinde Saurabh1, Zambare Sanket2, Borate Sambhaji3, Prof. Gavali .A.B.4
1, 2, 3 Student of S. B. Patil College of Engineering, Indapur, Pune-413106, MH, India.
4Assistant Professor, S. B. Patil College of Engineering, Indapur, Pune-413106, MH, India.
---------------------------------------------------------------------***---------------------------------------------------------------------
Abstract - In India, agriculture has come to be an important
source of economic development. The farmer selects a suitable
crop based totally at the sort of soil, climate condition of the
location, and economic cost. The agriculture industries started
attempting to find new strategies to increase the
manufacturing of food because of the increasing population,
adjustments in climate and on the spot deep mastering with
convolutional neural networks has performed amazing
fulfillment in the classification of diverse plant sicknesses. In
this examine, a ramification of neuron-wise and layer-wise
visualization techniques are carried out the usage of a CNN,
educated with a publicly available plant disorder photo
dataset. We show neural networks can seize colors, textures of
lesions specific to respective diseases on diagnosis.
Key Words: Crops Prediction, Soil Detection, Medicine,
Disease detection
1. INTRODUCTION
In general, agriculture is the spine of India and additionally
performs an critical function in Indian financial system by
means of offering a certain percent of home product to make
certain the meals security. However now-a-days, meals
production and prediction is getting depleted because of
unnatural climatic changes, so that you can adversely have
an effect on the financial system of farmers via getting a poor
yield and additionally assist the farmers to stay less
acquainted in forecasting the destiny plants. This research
work allows the newbie farmer in this sort of way to manual
them for sowing the motive-capable crops by way of
deploying system studying, one of the advanced technologies
in crop prediction and disease prediction. CNN algorithm
places forth in the way to attain it. The seed facts of the
plants are amassed here, with the appropriate parameters
like "temperature, humidity and moisture" content material,
which enables the vegetation to attain and a hit increase. The
users are endorsed to go into parameters like temperature
and their region will be taken automatically in this
application that allows you to begin the prediction
Procedure. Also software will recommend medicine for leaf
disease and display its rate.
1.1 Project Scope
"Agricultural departments wants to automate the detecting
the yield plants from eligibility method (real time)".To
automate this technique with the aid of show the prediction
result in internet utility or computer application. To optimize
the work to implement in artificial Intelligence environment.
1.2 Methodologies of problem solving
We planned to design a module so that someone with no
planning experience could use and get information about soil
and plant diseases. It proposed a program to predict plant
and leaf diseases. It also indicates the cure for the disease
and its value.
1.2 Motivation of the project
Modern technology have enabled human society to provide
sufficient food to feed extra than 7 billion humans but, food
security continues to be jeopardized due to a ramification of
factors which includes weather change, pollinator decline,
crop plant illnesses, and others. Crop Plant illnesses now not
only pose an international threat to Food protection,
however they can also have disastrous effects for smallholder
farmers whose livelihoods depend upon healthy crops.
Moreover, most people of hungry human beings (50
percentage) stay in smallholder farming households, making
smallholder farmers mainly prone to pathogen-associated
disruptions in meals deliver.
2.SOFTWAREREQUIREMENTANDSPECIFICATIONS
2.1 Assumption and dependencies
 Assumption:
As we give input image of plant system shoulddetect the
disease on crop.
 Dependencies:
We are totally depend on CNN model.
2.2 Functional Requirement
 System Feature 1(Functional Requirement)
Crop disease should be detect using CNN algorithm.
 System Feature 2(Functional Requirement)
Dataset is trained and tested properly
International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056
Volume: 09 Issue: 05 | May 2022 www.irjet.net p-ISSN: 2395-0072
© 2022, IRJET | Impact Factor value: 7.529 | ISO 9001:2008 Certified Journal | Page 1926
2.3 Software Requirements
 IDE : Spyder
 Coding Language : Python
 Operating System : Windows 10
2.4 Hardware Requirements
 RAM : 8 GB
 Hard Disk : 40 GB
 Processor : Intel i5 Processor
2.5 Non-Functional Requirements
2.5.1 Performance Requirement
 The performance of the functions and every
module must be well.
 The overall performance of the software will
enable the users to work efficiently.
 Performance of response should be fast.
 Performance of the providing virtual environment
should be fast.
2.5.2 Performance Requirement
The application is designed in modules where errors can be
detected and fixed easily. This makesit easier to install and
update new functionality if required.
3. SYSTEM DESIGN
3.1 System Architecture:
Fig-1: System Architecture
Mathematical Model:
Let S be the Whole system S= I, P, OI-input
P-procedureO-output
Input (I) I = Dataset
Where, Dataset contain Textual Dataset.Procedure (P),
P = I, Using I System perform operations and calculate the
prediction Pre-processing
Feature Extraction Classification using CNNOutput (O)
O= System to Recommend Products.
3.2 Data Flow diagram
International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056
Volume: 09 Issue: 05 | May 2022 www.irjet.net p-ISSN: 2395-0072
© 2022, IRJET | Impact Factor value: 7.529 | ISO 9001:2008 Certified Journal | Page 1927
In the Data Flow diagram, we show that the data flow in our
system in DFD0 shows that the DFD base where rectangular
current inputs and outbound circuits reflect our system, In
DFD1 we display real input and actual output inputs for our
system. system text or image and output are similarly in
DFD2 we present user functionality and management.
4. SPECIFICATIONS
4.1 Advantages
Predicting productivity of crop in diverse climatic situations
can assist ‘farmer’ and other partners in vital primary
management as some distance as agronomy and product
selection. This version may be used to pick out the maximum
wonderful crops for the area and additionally its yield
thereby enhancing the values and gain of farming
additionally. Expect leaf plant sickness and also show
medication and its charge.
4.2 Applications
Disease detection is an important function of decision-
makers at national and regional levels so that decisions can
be made quickly. An accurate model of crop yield prediction
can help farmers decide what to plant and when to plant it.
There are various ways to predict crop yields.
4.3 Limitation
1. This systemrequiresinternetconnection.
2. User needs to put correct data.
5. FUTURE SCOPE
In the case of rainfall it may indicate whether additional
water is needed or not. This Project project can be upgraded
by using it throughout India. Plant Disease Detection using
Image Processing where users can upload a photo of a
diseased plant and get pesticide recommendations.
Implementation of an intelligent Irrigation System to
monitor the climate and soil conditions, plant water use etc.
to automatically change the irrigation system.
6. CONCLUSION
A version is proposed for predicting soil collection and
providing suitable crop yield idea for that precise soil and
detecting plant leaf ailment. The version has been tested
with the aid of making use of extraordinary varieties of Deep
set of rules. CNN indicates maximum accuracy in soil type
and shows vegetation with much less time. It offers us extra
accuracy as compared to existing machine and gives extra
gain to farmers.
7. REFRENCES
[1] ‘Fatin Farhan Haque’, ‘Ahmed abdelgawad’,
‘Venkata Yanambaka’, ‘Kumar Yelamarthi’,“” Crop
capitulate Analysis by Using Machine Learning”.
[2] A. V. Deorankar, “- An Analytical Approach for Soil
,Land Classification System using Image
Processing”
[3] Ramesh Medar : -“Crop Yield Prediction by using
Machine Learning Algoritham ”.
[4] Yogesh Gandge, “A Study on Data Mining
Techniques for Crop Yield Prediction”
[5] Nikhil R“Real-Time Monitoring of Agricultural Land
with Crop Prediction as well as Animal Intrusion
Prevention using IOT and Machine Learning at
Edge”.
[6] Javier E. Sanchez-Gal ´ an “:Supervised Classification
of Spectral Signatures from Agricultural LandCover
in Panama Using the Spectral Angle Mapper
Algorithm”.
[7] T. Abimala, S. Flora Sashya and K. Sripriya “Soil
Classification using Image Processing”.
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“Plant Disease Detection by Using Deep LearningAlgorithm with Product, Price Recommendation and Crop prediction.”

  • 1. International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056 Volume: 09 Issue: 05 | May 2022 www.irjet.net p-ISSN: 2395-0072 © 2022, IRJET | Impact Factor value: 7.529 | ISO 9001:2008 Certified Journal | Page 1925 “Plant Disease Detection by Using Deep LearningAlgorithm with Product, Price Recommendation and Crop prediction.” Shinde Saurabh1, Zambare Sanket2, Borate Sambhaji3, Prof. Gavali .A.B.4 1, 2, 3 Student of S. B. Patil College of Engineering, Indapur, Pune-413106, MH, India. 4Assistant Professor, S. B. Patil College of Engineering, Indapur, Pune-413106, MH, India. ---------------------------------------------------------------------***--------------------------------------------------------------------- Abstract - In India, agriculture has come to be an important source of economic development. The farmer selects a suitable crop based totally at the sort of soil, climate condition of the location, and economic cost. The agriculture industries started attempting to find new strategies to increase the manufacturing of food because of the increasing population, adjustments in climate and on the spot deep mastering with convolutional neural networks has performed amazing fulfillment in the classification of diverse plant sicknesses. In this examine, a ramification of neuron-wise and layer-wise visualization techniques are carried out the usage of a CNN, educated with a publicly available plant disorder photo dataset. We show neural networks can seize colors, textures of lesions specific to respective diseases on diagnosis. Key Words: Crops Prediction, Soil Detection, Medicine, Disease detection 1. INTRODUCTION In general, agriculture is the spine of India and additionally performs an critical function in Indian financial system by means of offering a certain percent of home product to make certain the meals security. However now-a-days, meals production and prediction is getting depleted because of unnatural climatic changes, so that you can adversely have an effect on the financial system of farmers via getting a poor yield and additionally assist the farmers to stay less acquainted in forecasting the destiny plants. This research work allows the newbie farmer in this sort of way to manual them for sowing the motive-capable crops by way of deploying system studying, one of the advanced technologies in crop prediction and disease prediction. CNN algorithm places forth in the way to attain it. The seed facts of the plants are amassed here, with the appropriate parameters like "temperature, humidity and moisture" content material, which enables the vegetation to attain and a hit increase. The users are endorsed to go into parameters like temperature and their region will be taken automatically in this application that allows you to begin the prediction Procedure. Also software will recommend medicine for leaf disease and display its rate. 1.1 Project Scope "Agricultural departments wants to automate the detecting the yield plants from eligibility method (real time)".To automate this technique with the aid of show the prediction result in internet utility or computer application. To optimize the work to implement in artificial Intelligence environment. 1.2 Methodologies of problem solving We planned to design a module so that someone with no planning experience could use and get information about soil and plant diseases. It proposed a program to predict plant and leaf diseases. It also indicates the cure for the disease and its value. 1.2 Motivation of the project Modern technology have enabled human society to provide sufficient food to feed extra than 7 billion humans but, food security continues to be jeopardized due to a ramification of factors which includes weather change, pollinator decline, crop plant illnesses, and others. Crop Plant illnesses now not only pose an international threat to Food protection, however they can also have disastrous effects for smallholder farmers whose livelihoods depend upon healthy crops. Moreover, most people of hungry human beings (50 percentage) stay in smallholder farming households, making smallholder farmers mainly prone to pathogen-associated disruptions in meals deliver. 2.SOFTWAREREQUIREMENTANDSPECIFICATIONS 2.1 Assumption and dependencies  Assumption: As we give input image of plant system shoulddetect the disease on crop.  Dependencies: We are totally depend on CNN model. 2.2 Functional Requirement  System Feature 1(Functional Requirement) Crop disease should be detect using CNN algorithm.  System Feature 2(Functional Requirement) Dataset is trained and tested properly
  • 2. International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056 Volume: 09 Issue: 05 | May 2022 www.irjet.net p-ISSN: 2395-0072 © 2022, IRJET | Impact Factor value: 7.529 | ISO 9001:2008 Certified Journal | Page 1926 2.3 Software Requirements  IDE : Spyder  Coding Language : Python  Operating System : Windows 10 2.4 Hardware Requirements  RAM : 8 GB  Hard Disk : 40 GB  Processor : Intel i5 Processor 2.5 Non-Functional Requirements 2.5.1 Performance Requirement  The performance of the functions and every module must be well.  The overall performance of the software will enable the users to work efficiently.  Performance of response should be fast.  Performance of the providing virtual environment should be fast. 2.5.2 Performance Requirement The application is designed in modules where errors can be detected and fixed easily. This makesit easier to install and update new functionality if required. 3. SYSTEM DESIGN 3.1 System Architecture: Fig-1: System Architecture Mathematical Model: Let S be the Whole system S= I, P, OI-input P-procedureO-output Input (I) I = Dataset Where, Dataset contain Textual Dataset.Procedure (P), P = I, Using I System perform operations and calculate the prediction Pre-processing Feature Extraction Classification using CNNOutput (O) O= System to Recommend Products. 3.2 Data Flow diagram
  • 3. International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056 Volume: 09 Issue: 05 | May 2022 www.irjet.net p-ISSN: 2395-0072 © 2022, IRJET | Impact Factor value: 7.529 | ISO 9001:2008 Certified Journal | Page 1927 In the Data Flow diagram, we show that the data flow in our system in DFD0 shows that the DFD base where rectangular current inputs and outbound circuits reflect our system, In DFD1 we display real input and actual output inputs for our system. system text or image and output are similarly in DFD2 we present user functionality and management. 4. SPECIFICATIONS 4.1 Advantages Predicting productivity of crop in diverse climatic situations can assist ‘farmer’ and other partners in vital primary management as some distance as agronomy and product selection. This version may be used to pick out the maximum wonderful crops for the area and additionally its yield thereby enhancing the values and gain of farming additionally. Expect leaf plant sickness and also show medication and its charge. 4.2 Applications Disease detection is an important function of decision- makers at national and regional levels so that decisions can be made quickly. An accurate model of crop yield prediction can help farmers decide what to plant and when to plant it. There are various ways to predict crop yields. 4.3 Limitation 1. This systemrequiresinternetconnection. 2. User needs to put correct data. 5. FUTURE SCOPE In the case of rainfall it may indicate whether additional water is needed or not. This Project project can be upgraded by using it throughout India. Plant Disease Detection using Image Processing where users can upload a photo of a diseased plant and get pesticide recommendations. Implementation of an intelligent Irrigation System to monitor the climate and soil conditions, plant water use etc. to automatically change the irrigation system. 6. CONCLUSION A version is proposed for predicting soil collection and providing suitable crop yield idea for that precise soil and detecting plant leaf ailment. The version has been tested with the aid of making use of extraordinary varieties of Deep set of rules. CNN indicates maximum accuracy in soil type and shows vegetation with much less time. It offers us extra accuracy as compared to existing machine and gives extra gain to farmers. 7. REFRENCES [1] ‘Fatin Farhan Haque’, ‘Ahmed abdelgawad’, ‘Venkata Yanambaka’, ‘Kumar Yelamarthi’,“” Crop capitulate Analysis by Using Machine Learning”. [2] A. V. Deorankar, “- An Analytical Approach for Soil ,Land Classification System using Image Processing” [3] Ramesh Medar : -“Crop Yield Prediction by using Machine Learning Algoritham ”. [4] Yogesh Gandge, “A Study on Data Mining Techniques for Crop Yield Prediction” [5] Nikhil R“Real-Time Monitoring of Agricultural Land with Crop Prediction as well as Animal Intrusion Prevention using IOT and Machine Learning at Edge”. [6] Javier E. Sanchez-Gal ´ an “:Supervised Classification of Spectral Signatures from Agricultural LandCover in Panama Using the Spectral Angle Mapper Algorithm”. [7] T. Abimala, S. Flora Sashya and K. Sripriya “Soil Classification using Image Processing”.
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