Intuitionistic Fuzzy Hamacher Generalized Shapley Choquet Integral Operators Based Decision-Making Model for Feature Extraction and Automatic Material Classification in Mining Area Using Satellite Data

The normal methods for monitoring environmental pollution with image data have many false positives. Therefore, this study is proposing a single-valued neutrosophic set (SVNS) (a variant of NS)-based method as a decision-making model using intuitionistic fuzzy Hamacher generalized Shapley Choquet integral operators for feature extraction and automatic material classification in mining area using satellite data. The experimental results show that this decision-making model using intuitionistic fuzzy Hamacher generalized Shapley Choquet integral operators for feature extraction and automatic material classification can better predict the presence of four heavy metals, i.e., vanadium(V), iron (Fe), copper (Cu), and nickel (Ni) in the study area than other methods. For vanadium metal, the determination accuracies, namely, producer accuracy, user accuracy, overall accuracy, and Kappa were 94.5%, 94.1%, 93.88%, and 0.93%, respectively. It was found that the estimated results and the distribution trend of heavy metals are almost the same as in actual ground measurements.


Introduction
e environmental pollution due to heavy metal mining is increasing day by day [1]. Geological Survey of India data say that India is consuming 4% of vanadium produced in the world, that is, about 85000 metric tons. In this arena, China is the largest player, who consumes 44% of this metal and they are producing 57% of globe's vanadium. e vanadium metal is noted for its toxicity [25]. e symptoms associated with vanadium poisoning are cough with sputum, wheezing, sore throat, headache, and rhinitis. e studies have shown that vanadate acts directly on the smooth muscle of the bronchi. It promotes the release of Ca 2+ in the cells by a mechanism involving the production of inositol triphosphate and inhibition of ATPase [6].
In remote sensing technology, we acquire information or data about the Earth's surface without actually being in contact with it [9]. e best example of remote sensing are our eyes. Human beings observe many things through the eyes without touching these things. However, our eyes are not sensitive to all parts of the electromagnetic spectrum. Our eyes are only sensitive to the visible part of the electromagnetic spectrum. erefore, we as humans use a very small window of the electromagnetic spectrum. But there are some animals and birds which are more sensitive in other parts of the electromagnetic spectrum. For instance, the mammal bat has got a di erent kind of remote sensing technology. at means, it sends the echo pulses and records the return pulses. Based on that, bat basically makes the assessment about its prey.
So, our eyes are only sensitive to the visible part and not the infrared or thermal infrared part of the electromagnetic spectrum. As a result, when we look at an object through a distance, we cannot assess the temperature of that object unless we know some other background information. Nowadays, various types of satellites are in space. ese satellites are basically recording whatever the reflected or emitted energy reflected is. For reflected energy, we require some source. e best source available for us is the Sun. Sun during daytime illuminates the Earth, and whatever reflected energy reaching the satellite is recorded. All natural objects which are having temperature above absolute zero also emit energy. at energy can also be recorded in thermal part of the electromagnetic spectrum.
In remote sensing, reflected and emitted energies are recorded. Processing remote sensing data involves analysis of data and how to use this dataset. Various types of satellites generate huge amount of dataset. For instance, nowadays, people are using satellites for natural resource management, disaster management, civil engineering, and so on for various applications. In effect, there is an illumination source available to us from the Sun and the satellite. Moreso, different satellites may have ground stations and recording analysis facility on the ground. e reflected remote sensing requires the Sun as energy source, the radiation and the atmosphere in-between.
So, we are having a processing facility between the Earth and the Sun and whatever interactions the Sun has with different objects. For example, if the solar energy is falling on water, it will have a reflectance. If it is falling on the bare ground, it will have different reflectance. If it is on vegetation, it will have different reflectance. erefore, the interaction with the target is important, and it is the basis for image making and image interpretation and analysis. We present the procedure we followed after the reflection going through the atmosphere and final recordings of the satellite. ese satellites have different types of sensors. e different types of sensors were incorporated with the satellites to facilitate the transmission of data from satellite to ground stations of different satellites.
Additionally, data processing and analysis were performed. Data interpretation and analysis are much important because a lot of data nowadays is available but not much analysis or interpretations are being done. New innovations always require integration with other datasets while doing interpretation and analysis. e satellite reaches different types of objects on the Earth including buildings, roads, grasses, water bodies, and forests. e reflected energy, i.e., the reflected solar radiation goes back to the satellites through the atmosphere. During transmission, a lot of changes are introduced into the reflected radiation from the Earth towards the satellite. ere is a need to correct the reflected transmission and enhance our image.
is approach is employed in digital image processing, satellite data, and can be utilized in remote sensing. Solar radiation which reaches the Earth has to go back to the satellite through the atmosphere again with component B. As energy travels from its source to a target, it will come in contact with and interact with that misfile. Initially, the energy from the source will interact with the target for a few seconds. When our solar radiation or reflected energy is going back from the Earth's surface towards the satellite, they may be obstructed by clouds. During the day, the passive remote sensing, the reflected part, and the clouds create problems. e major issue is that the satellite will record clouds but not the part of the Earth.
It must be noted that the atmosphere plays a very important role. While this solar radiation and the reflected solar radiation reach the satellite, then we have the C component which is the interaction with the target. Once the energy hits or the solar radiation hits the object or the target, it interacts with the target depending on the properties of both the target and the radiation. ere are variations in properties resulting from different behaviors regarding whether the solar radiation is falling on a building or on a bare soil or on rock exposures or over the water body or vegetation. erefore, the signatures that are reflected towards the satellite are also going to be different. is makes the basis of our image which can be depicted differently in digital values basically and assign these digital values different colors. is enable us to see things in different colors, and the D component is the recording of energy by the sensors. Once this reflected solar energy reaches the satellite, it is recorded by the sensors which are present. e recording systems are onboard of these different satellites.
After the energy has been scattered by the Earth, the reflected energy goes through direct misfile to the satellite. It has to pass through the atmosphere, and this can create some problems such as absorptions and scattering requiring a sensor in contact with the target to collect and record the electromagnetic radiation. Recording systems onboard of these satellites are also required. e satellites do not only record but also transmit the data towards the processing centre. erefore, with appropriate setup for recording live data, as part of the Earth is being scanned by the satellite, the data are being recorded at the same time. Also, the data recorded are directly being broadcasted to Earth stations. e data about a particular part of the Earth are immediately received as the satellite passes over. e transmission, reception, and processing represent the E component. e transmission is done by the satellite and the energy is recorded by the onboard sensors. Often, the transmission is done in electronic/digital form. e transmissions received by Earth stations are broadcasted over different parts of the Earth in different countries. Initial data processing is done by the Earth stations after which advanced processing or digital image processing is carried out.
Component F involves the interpretation and analysis of the recorded image by onboard satellite sensors. e recorded image may initially not be the one transmitted from the object as expected or the differentiation between image and object. erefore, a lot of processing is required. e first process is to correct the image and do radiometric corrections. ere might be some problems with the sensor scanners that need to be corrected. Generally, these problems are corrected by the operators of the satellites or Earth 2 Advances in Materials Science and Engineering stations. During the analysis, decision is taken to remove the atmospheric distortions. Because the reflected energy is going through the atmosphere, this causes a lot of distortions in the data, ultimately in the images. e distortions need to be removed to make the image much sharper, more useful, and interpretable. Additionally, some advanced image processing techniques are applied. A few advanced image processing techniques exist of which pattern recognition or image classification is mainly used [3,10]. USGS Landsat 8 Level 2, Collection 2, Tier 1 (LANSAT/ LC08/C02/T1) dataset was collected by our team at a certain mining area to evaluate the method proposed and to prepare a forest density map. Using a satellite image, it is possible to prepare a land-use map or maybe a little logical map, that is, a structural map. All kinds of maps can then be derived using remote sensing data, which is explained under interpretation and analysis. Finally, the G component, that is, the application and the most important one is explained in Section 5. Satellite data analysis has a lot of applications. In some research studies, weather forecasting and weather monitoring were employed. Long-term data can be applied especially by climate change researchers in simple land map preparation, creation of land cover maps, forecast cover maps, vegetation density maps, and even agricultural production forecasting and mineral exploration [1,11,12].
Our environment may be polluted by pollutants from vehicles or industry doing coal burning or mining. Satellite images help recognize large areas of pollution created by fires, dust or sand storms, volcanic eruptions, large industrial sources, or the transport of man-made pollution from other regions. Smaller sources such as small industries or local roads will not be visible in satellite images.
is study proposes a novel material detection technique specially tuned for vanadium metal detection to surpass this difficulty of detecting pollutants from small sources [13,14]. Specifically, the study considered the metal vanadium as a focal point due to its toxicity at a time when more countries like India is coming to the arena of large-scale producers of vanadium metal through mining.
For image classification, the back propagation neural network (BPNN) is one of the most widely used neural network models. e BPNN model incorporates a hierarchical model for feature extraction and classification. In this study, we focus on defining a BPNN-based model for classifying the vanadium metal pollution within the satellitecollected images with the help of fuzzy clustering [15]. e traditional approach for image clustering based on neural networks has many false positives [13,16,17]. e stakeholders, for example, the environmentalists, find it difficult and tedious to make a decision to address the air pollution. erefore, in this study, a novel fussy classification approach has been developed to address air pollution problems. Neutrosophic sets (NSs) are known for denoising, clustering, segmentation, and classification for various problems. Hence, the single-valued neutrosophic set (SVNS) (a variant of NS)-based method as a decision-making model using intuitionistic fuzzy Hamacher generalized Shapley Choquet integral operators for feature extraction and automatic material classification in mining area using satellite data is proposed here. e rest of this study is structured as follows: Section 2 presents the background of neutrosophic sets based image classification techniques. e proposed method of the image classification and decision-making problem is proposed in Section 3. e experiment is presented in Section 4 in which we collected and preprocessed the USGS Landsat 8 Level 2, Collection 2, Tier 1 (LANDSAT/LC08/C02/T1) dataset at a certain mining area to evaluate our proposed method. Section 5 gives the experimental setup and some examples, and includes the conclusion and future work of this study.

The Background
Neutrosophic sets (NSs) are used for segmentation, denoising, and classification in many image processing applications. To avoid the uncertainty of efficient decision making in image processing techniques, NS has been incorporated [11,18]. e NS domain constitutes three membership functions: true (T), indeterminacy (I), and false (F). For clustering, the image is transformed into NS domain. Different filters are used in this process. Median filter to calculate T that iteratively calculates the best form of the image of T and F function is one of the examples of such filter. Sobel, Prewitt, and the unsharp filter are used to calculate the indeterminacy neutrosophic subset I. e pixels whose I value is greater than a specific threshold are omitted from the categorization process in the clustering phase. Other pixels are categorized using the K-means [19]. e single-valued neutrosophic set (SVNS) is a form of NS which can be used in real world problems [20]. e SVNS is a generalization of classic set, fuzzy set, interval-valued fuzzy set, intuitionistic fuzzy set, and paraconsistent set [20,21].
Flowchart extended FS data to NS (SNS, SVNS, and INS) is shown in Figure 1, where FS is the fuzzy set, NS is the neutrosophic set, SNS is the simplified neutrosophic set, SVNS is the single-valued neutrosophic set, INS is the interval neutrosophic set, IFS is the intuitionistic fuzzy set, and IVIFS is the interval-valued intuitionistic fuzzy set. e SVNS: consider P to be a space of points (pixel), and let p be a generic component in P [22]. In SVNS, S in P is an object where M S : P ⟶ [0, 1] is the truth-membership function, D S : P ⟶ [0, 1] is the indeterminacy-membership function, and N S : P ⟶ [0, 1] is the falsity-membership function. us, for each point p in P, we have As an extension of the SVNS, an INS is defined [20] by an object: where M S is the truth-membership function, D S is the indeterminacy-membership function, and N S is the Advances in Materials Science and Engineering falsity-membership function, such that for each point p in An INS [23] can provide a value that varies for the "truth, inde niteness, and falseness" rather than single values for each of these measures. For the INS, the interval neutrosophic number (INN) has been de ned as "An object x given by the function , where each module of x is an interval value." 2.1. e "Score, Accuracy, and Possibility Degree Functions" of INNs.
e score (S) and accuracy (A) functions of the INN, as proposed by Sahin [24], are de ned. " , the score S( y) and the accuracy A( y) functions of y are, respectively, de ned as follows: where S( y) ∈ [− 1, 1].

A( y)
where , then " p≻ q," and if "S( p) S( q)" and "A( p) > A( q)", then p≻ q, where p and q are the INNs. e possibility degree B( p≽ q) [25] of interval numbers p [p B , p A ] and q [q B , q A ] is given as

Hamacher Operations.
As proposed by Hamacher [26], "Hamacher product" ⊗ H and "Hamacher sum" ⊕ H can be calculated as when z 1, ⊗ H and ⊕ H reduces to "algebraic product and sum," respectively, as and if z 2, ⊗ H and ⊕ H reduce to the Einstein' "t-norm" and "t-conorm," respectively, as . . , p n is a nite set of criteria that satis es the following properties [27].
If the elements in P are independent, then is can be normalized as proposed by Sugeno [27] as "n(P) If S⊆P, then "n(S) Advances in Materials Science and Engineering λ can be determined with equation (13) and n(P) � 1: e Choquet integral [28] based on the fuzzy measure is given as follows.
"If g is a positive real-valued function on P � p 1 , p 2 , . . . , p max and n is a fuzzy measure on P, the discrete Choquet integral of g with respect to n, denoted by χ n (g), is where (·) indicates a permutation on P, such that g(p (1) ) ≥ g(p (2) ) ≥ · · · ≥ g(p (max) ), with B (i) � p (1) , p (2) , . . . , p (i) for c ≥ 1 and B (0) � ∅." e "interval neutrosophic numbers Choquet integral (INNCI)" operator [29] for an INN function g: P ⟶ B on P with respect to a fuzzy measure n on P is given by If n is a fuzzy measure on a finite set P and n) are INNs on P, then the INHPCI can be defined as follows [30]: where (·) indicates a permutation on 1, 2, 3, . . . , n where €, (y (i) , y (j) ) denotes the support of y (i) from y (j) and have the following mentioned properties.
where d denotes the Hamming distance of INNs. Also, if n) are INNs on a finite set P, then for a fuzzy measure n on P, the INHPCI can be expressed as [30] INHPCI y 1 , y 2 , . . . y n Equation (19) expresses the INPCI operator in terms of the additive generators [31], f and g of "Hamacher t-norm and t-conorm." 1, 2, . . . , n) are INNs on a finite set X, then for a fuzzy measure m on X, the "interval neutrosophic Hamacher Advances in Materials Science and Engineering power geometric Choquet integral operator (INHPGCI)" is given as follows:

Proposed Model
e proposed decision-making model using intuitionistic fuzzy Hamacher generalized Shapley Choquet integral operators for feature extraction and automatic material classification with mining area satellite data employs the back propagation neural network (BPNN) algorithm [32]. ere is an express training stage with known vanadium pixel set MFCC corpus. Training MFCC corpus is based on vanadium image properties given in illustrative example of Section 4. Input image signals are taken from noisy image corpus LANDSAT/LC08/C02/T1. Using the spectral subtraction method, the noise is removed from the input. Speech signal is divided into small frames of N samples; with this, the adjacent frames are overlapped by N-M samples. is experiment puts standard value for N � 256 and M � 100. Hamming windows are created with the frames to avoid any cutoffs at the ends. From this, hamming windows future vectors are extracted with the MFCC algorithm. After the clusters are created by the intuitionistic fuzzy Hamacher generalized Shapley Choquet integral operators fuzzy c-mean (HGSCIO-FCM) clustering method, they are arranged in proper format to feed into the artificial neural Network for recognition. In the training stage, the weights of the feed forward neural network were given by some arbitrary values that were based on vanadium image properties given in illustrative example of Section 4 and is then tuned for the optimal value during the iterative learning procedure with the help of the BPNN algorithm. In the testing stage, the neural network is tested against a variety of test samples of image (MFFC feature vector sets) to ensure whether the acquired system correctly categorizes the image fragment into vanadium and other metal clusters. Now, authenticity of metal detection is suggested as end result using vanadium/ other metal image corpus. e process is given, as shown in Figure 2 and Algorithm 1.

Feature Extraction.
Readers can refer to the steps for calculating MFCC in [10].

e Material Classification Process with HGSCIO-FCM.
e proposed algorithm classifies the pixels according to fuzzy rules that is automatically generated from the sample data with respect to edge strength values of pixels. A two-step learning of the neurofuzzy network is done on a training set for making the fuzzy rule base for pixel classification.
Here, each datum is a vector of the following form: (E(1) ij , . . ., E ® ij , c1, c2, c3), where c1, c2, and c3 represent the binary values which designate the association of a pixel to the classes C1, C2, and C3. In the first learning step, parameters of fuzzy rules are obtained through an unsupervised learning algorithm based on a competitive scheme. In the second learning step, fuzzy rule parameters are further optimized via a supervised learning algorithm based on a gradient descent technique [2]. Once learning is completed, the neurofuzzy network encodes a set of fuzzy classification rules in its topology, which is explained in HGSCIO-FCM Decision-Making Model for Material Detection. is can be used to perform classification of pixels in any image.

HGSCIO-FCM Decision-Making Model for Material Detection.
is section proposes a novel multicriteria decision-making model for material image clustering with INHPCI and INHPGCI operators.
Assume that calculation data of the alternatives are provided by INNs and there is an interrelationship among the attributes. "P � p 1 , p 2 , . . . , p m " be a set of pixels from various related metal image sets grabbed through satellite and let "X � X 1 , X 2 , . . . , X n " be a collection of probable pixels sets for classifying a portion of image as vanadium.

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Step 2. Calculate the supports,

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Here, "normalized Hamming distance" between any two INNs is I(y cd , y ce ).
Step 4. Identify the fuzzy degree for all of the material factors X d (d � 1, 2, . . . , n), and with equation (14), the fuzzy degree n(S) of all S⊆P can be calculated, where λ can be calculated with equation (15).

Experimental Results
In the study, the image vectors are categorized into vanadium/other metals with the help of the pixel classification algorithm devised in MATLAB. From the classified image sample, the highest probable clusters of intended material are extracted. Afterwards, automated groping is done with intuitionistic fuzzy Hamacher generalized Shapley Choquet integral operators fuzzy c-mean (HGSCIO-FCM) to divide vanadium and other metal pixel values. An automated pixel set categorization is productively done by HGSCIO-FCM.
Here, HGSCIO-FCM has to be trained prior to the real classification. e HGSCIO-FCM is used to obtain efficient and speedy performance of an architecture. e study claims that for vanadium and other metal pixel recognition, the system is 92% and 100% efficient, respectively. e average performance of the system is reported as 96.55%.

Data Source.
e study uses the USGS Landsat 8 Level 2, Collection 2, Tier 1 (LANDSAT/LC08/C02/T1) dataset provided by USGS (United States Geological Survey). is dataset was collected by USGS with Landsat 8 OLI/TIRS sensors. It contains atmospherically corrected surface reflectance and land surface temperature data. is dataset is a culmination of orthorectified surface reflectance derived from (5 visible-near-infrared (VNIR) bands, 2 short-wave infrared (SWIR) bands) set, an orthorectified surface temperature derived from thermal infrared (TIR) band, intermediate bands used in calculation of the ST products, and QA bands. e collected data contain the standardized reference grid of overlapping images with 170 km × 183 km.
Landsat satellites image the entire Earth's surface at a 30meter resolution about once every two weeks including multispectral and thermal data. Landsat data are processed and hosted at the USGS's Earth Resources Observation and Science (EROS) Centre in Sioux Falls, South Dakota. e USGS Landsat 8 Level 2, Collection 2, Tier 1 (LANDSAT/ LC08/C02/T1) [33] data in Earth Engine in its raw form, as surface reflectance, TOA-corrected reflectance, and in various ready-to-use computed products, such as NDVI and EVI vegetation indices, are available for download at no charge from Earth Explorer [34]. e dataset LANDSAT/LC08/C02/T1 used for this research contains a set of organised images, which is collected through Landsat satellite that orbits the Earth at 900 km (559 mi) in a Sun-synchronous, near-polar orbit (99.2 degrees inclination), circled the Earth every 103 minutes, and 18-day repeat cycle with an equatorial crossing time of 9 : 45 a.m. ±15 minutes.
Landsat 2 carried the sensors, the return beam vidicon (RBV) and the multispectral scanner system (MSS). e RBV sensor utilized vidicon tube instruments containing an electron gun that read images from a photoconductive faceplate. e data stream received from the satellite was analog-to-digital preprocessed to correct for radiometric and geometric errors. It has 3-axis stabilized using 4 wheels to ± 0.7°attitude control and twin solar array paddles (single-axis articulation). For data reception, transmission uses S-band and very high frequency (VHF) communications and hydrazine propulsion system with 3 thrusters.
e Tier 1 data obtained contain the data that meet geometric and radiometric quality requirements. e Landsat 8 also collects Tier 2 and Tier 3 data. Tier 2 has data that do not meet the Tier 1 requirements. Tier 3 has real-time (RT) data that have not yet been evaluated, that is, the data collected in real-time. Examples for Landsat 8 datasets are given in Table 1.
As mentioned earlier, Landsat 2 has the return beam vidicon (RBV) sensor that has 80-meter ground resolution and has three cameras operating in band 1 visible blue-green (475-575 nm), band 2 visible orange-red (580-680 nm), and band 3 visible red to near-infrared (690-830 nm). 8 Advances in Materials Science and Engineering Additionally, the MSS sensors were line-scanning devices observing the Earth perpendicular to the orbital track. MMS also covers the 80-meter ground resolution with band 4 visible green (0.5-0.6 µm), band 5 visible red (0.6-0.7 µm), band 6 near-infrared (0.7-0.8 µm), and band 7 near-infrared (0.8-1.1 µm) cameras. So, the proposed mechanism is able to tackle the transmission ranges, since these cameras are working in all visible spectrum of light. e datasets given in the example above contain raw data, T1 or T2 images, TOA (top-of-atmosphere reflectance), SR (surface reflectance), and LST (land surface temperature). An example of image available in LANDSAT/ LC08/C02/T1 is shown in Figure 3.

Illustrative Example.
Here, an illustrative example is presented as a demonstration of the projected MCDM model for pixel set clustering with an intention to detect vanadium metal pollution under the "interval neutrosophic environment." Vanadium is a silvery-white, ductile, metallic-looking solid. Assume that an observatory is performing metal classification on four sets of pixels "P � p 1 , p 2 , p 3 , p 4 " based on the following factors to detect the picture area with the highest vanadium pollution/detection. Assume that we have the four pixel sets "p c (c � 1, 2, 3, 4)," which need to be classified on metal properties "X d (d � 1, 2, 3, 4)" and are expressed as interval neutrosophic decision matrix "W � (x cd ) 4×4 " as given in Table 2, where each "x cd (c � 1, 2, 3, 4; d � 1, 2, 3, 4)" is an INN and signifies the detection property of the c th pixel set "p c (c � 1, 2, 3, 4)" under the d th factor "X d (d � 1, 2, 3, 4)." e calculation of the c th pixel set "p c (c � 1, 2, 3, 4)" under the d th factor "X d (d � 1, 2, 3, 4)" has been accomplished according to the classification report.
e "interval neutrosophic decision matrix" is created as given in Table 2.
Step 12. From Table 6, we can conclude that even if the total calculations of "x c (c � 1, 2, 3, 4)" conforming to each pixel set p c (c � 1, 2, 3, 4) is dissimilar, the best ranking value is x 2 . So, p 2 is the highly preferable pixel set for classifying it as vanadium.
e screenshot of the HGSCIO-FCM based satellite image segmentation and classification application is shown in Figure 6. e classification accuracy of the 4 features of 4 metals (vanadium, iron, copper, and nickel), namely, X 1 , X 2 , X 3 , and X 4 was taken. e properties of these metals are given in Table 7.
e charts in Figure 7 show the classification accuracy of the four features using trained BPNN models that is using HGSCIO-FCM at four user levels. From this comparative study, it is inferred that no matter which user side the BPNN model is used, the HGSCIO-FCM classification-based BPNN system outperforms the other classification models. On the other hand, it is indicated that the HGSCIO-FCMbased classification is more robust.
Experiments with laboratory data: in order to verify the performance of BPNN models that is using HGSCIO-FCM system for material classification, experiments are realized on the laboratory data. e classification process of an image in different stages of the implemented BPNN model that is using HGSCIO-FCM is shown in Figure 8. e final detection cluster of vanadium through the implemented model is shown in Figure 9.
For vanadium metal, the determination accuracies, namely, producer accuracy, user accuracy, and overall accuracy were 94.50%, 94.10%, and 93.88%, respectively. It was found that the estimated results and the distribution trend of heavy metals are almost the same as in actual ground measurements. Standard interpretation values for image processing, PSNR (peak-to-signal noise ratio), and Kappa coefficient (accuracy assessment parameters) of the processed system were 55.7 dB and 0.93, respectively. at gives a good accuracy of the clustering system with the proposed model. Average elapsed time of the implemented BPNN image clustering model that is using HGSCIO-FCM is 4.0134 seconds.
As a comparative study, the proposed method was also tested with Landsat 3 and Landsat 4 datasets [34]. Readers must note that the Landsat 4 dataset is generated through satellites with reception ranges asymmetric. e investigation found that with Landsat 3 dataset, the determination accuracies, namely, producer accuracy, user accuracy, and overall accuracy were 93.99%, 93.88%, and 93.94%, respectively.
e similar results were achieved with the Landsat 4 dataset too. is shows that the accuracy of the proposed method is not changing with the change in datasets of similar nature.
e proposed method is also tested with the Landsat 9 real-time dataset provided through [34]. Landsat 9 is processed into the Landsat Collection 2 inventory structure in the Worldwide Reference System-2 (WRS-2) path/row system, with swath overlap (or sidelap) varying from 7% at the equator to a maximum of approximately 85% at extreme latitudes. All Landsat 9 data products are available for download through the USGS Earth Resources Observation and Science (EROS) Centre at no charge. Since Landsat 9 is imaging global landmasses and nearshore coastal regions, including islands at solar elevation angles greater than 5 degrees that were not always routinely collected prior to Landsat 8, the determination accuracies, namely, producer accuracy was comparatively high and that was 96.81%. On the other side, the user accuracy was found to be compromised, which was 89.11%. e reduced accuracy may be due to receiving reception speed fluctuation of the realtime data which will be rectified in the future.

Conclusion
A novel BPNN model that is using the HGSCIO-FCM system for material classification to detect objects from satellite data is proposed in this study. e results provided from the experiments proved that the decision-making model using intuitionistic fuzzy Hamacher generalized Shapley Choquet integral operators for feature extraction and automatic material classification in mining area using satellite data shows encouraging performances in terms of material classification.
To the best of our knowledge, this is the first study making use of intuitionistic fuzzy Hamacher generalized Shapley Choquet integral operators for feature extraction and automatic material classification for satellite image classification problem.
Specifically, the main contributions of this study are as follows: (i) e proposed approach is able to provide the satellite-based image clustering decisions making within narrow time intervals, which helps in addressing the geological decisions more systematically (ii) We propose a new fuzzy Hamacher generalized Shapley Choquet integral operators-based BPNN architecture for the feature extraction process, in which the model structure is not too deep and the results (iii) Furthermore, deep feature classification using artificial neural networks (ANNs) models such as back propagation neural networks has been employed to improve the classification performance (iv) Regarding the experiment, a USGS Landsat 8 Level 2, Collection 2, Tier 1 (LANDSAT/LC08/C02/T1) dataset has been considered to evaluate the proposed approach. e collected data contain standardized reference grid of overlapping images with 170 km × 183 km.
(v) Specifically, we defined a novel automated material classification method by employing the decisionmaking capabilities of fuzzy Hamacher generalized Shapley Choquet integral operators

Data Availability
e data used to support the findings of this study are available from the corresponding authors upon request.

Disclosure
is study was performed for the academic purpose of Ho Technical University, Ho, Ghana.