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INVESTIGATIVE WILDFIRE DATA FOR TURKEY/ NASA

INVESTIGATIVE WILDFIRE CSV DATA

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa

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About this Dataset

INVESTIGATIVE WILDFIRE DATA FOR TURKEY/ NASA

INVESTIGATIVE WILDFIRE DATA FOR TURKEY/ NASA

BE CAREFUL OF THE FILE NAMES.

IT CONTAINS THE DATA NEEDED TO RESEARCH LATEST FOREST FIRES IN TURKEY.

PAY ATTENTION TO THE DATE INTERVALS. THESE ARE 7-11 DAILY DATA OF LAST TIMES.

  • fire _ nrt _ M _ C61 _ 212465 _ all _ countries.csv

This file is important for all countries becuase it contains fire data of last 11 days for all around the world

Content

Data on recent forest fires in Turkey, published with permission from NASA Portal.
The data was created based on the hotspots and obtained from the satellite.

3 SEPARATE SATELLITE DATA:

  • MODIS C6.1
  • SUOMI VIIRS C2
  • J1 VIIRS C1

GENERAL ATTRIBUTES

  • Latitude
    Center of nominal 375 m fire pixel

  • Longitude
    Center of nominal 375 m fire pixel

  • Bright_ti4
    (Brightness temperature I-4)
    VIIRS I-4: channel brightness temperature of the fire pixel measured in Kelvin.

  • Scan
    (Along Scan pixel size)
    The algorithm produces approximately 375 m pixels at nadir. Scan and track reflect actual pixel size.

  • Track
    (Along Track pixel size)
    The algorithm produces approximately 375 m pixels at nadir. Scan and track reflect actual pixel size.

  • Acq_Date
    (Acquisition Date)
    Date of VIIRS acquisition.

  • Acq_Time
    (Acquisition Time)
    Time of acquisition/overpass of the satellite (in UTC).

  • Satellite
    N Suomi National Polar-orbiting Partnership (Suomi NPP)

  • Confidence
    This value is based on a collection of intermediate algorithm quantities used in the detection process. It is intended to help users gauge the quality of individual hotspot/fire pixels. Confidence values are set to low, nominal and high. Low confidence daytime fire pixels are typically associated with areas of sun glint and lower relative temperature anomaly (15K) temperature anomaly in either day or nighttime data. High confidence fire pixels are associated with day or nighttime saturated pixels.

Please note:
  • Low confidence nighttime pixels occur only over the geographic area extending from 11° E to 110° W and 7° N to 55° S. This area describes the region of influence of the South Atlantic Magnetic Anomaly which can cause spurious brightness temperatures in the mid-infrared channel I4 leading to potential false positive alarms. These have been removed from the NRT data distributed by FIRMS.

  • Version
    Version identifies the collection (e.g. VIIRS Collection 1) and source of data processing: Near Real-Time (NRT suffix added to collection) or Standard Processing (collection only).

"1.0NRT" - Collection 1 NRT processing.

"1.0" - Collection 1 Standard processing.

  • Bright_ti5
    (Brightness temperature I-5)
    I-5 Channel brightness temperature of the fire pixel measured in Kelvin.

  • FRP
    (Fire Radiative Power)
    FRP depicts the pixel-integrated fire radiative power in MW (megawatts). Given the unique spatial and spectral resolution of the data, the VIIRS 375 m fire detection algorithm was customized and tuned in order to optimize its response over small fires while balancing the occurrence of false alarms. Frequent saturation of the mid-infrared I4 channel (3.55-3.93 µm) driving the detection of active fires requires additional tests and procedures to avoid pixel classification errors. As a result, sub-pixel fire characterization (e.g., fire radiative power [FRP] retrieval) is only viable across small and/or low-intensity fires. Systematic FRP retrievals are based on a hybrid approach combining 375 and 750 m data. In fact, starting in 2015 the algorithm incorporated additional VIIRS channel M13 (3.973-4.128 µm) 750 m data in both aggregated and unaggregated format.

Satellite measurements of fire radiative power (FRP) are increasingly used to estimate the contribution of biomass burning to local and global carbon budgets. Without an associated uncertainty, however, FRP-based biomass burning estimates cannot be confidently compared across space and time, or against estimates derived from alternative methodologies. Differences in the per-pixel FRP measured near-simultaneously in consecutive MODIS scans are approximately normally distributed with a standard deviation (ση) of 26.6%. Simulations demonstrate that this uncertainty decreases to less than ~5% (at ±1 ση) for aggregations larger than ~50 MODIS active fire pixels. Although FRP uncertainties limit the confidence in flux estimates on a per-pixel basis, the sensitivity of biomass burning estimates to FRP uncertainties can be mitigated by conducting inventories at coarser spatiotemporal resolutions.

http://cedadocs.ceda.ac.uk/770/1/SEVIRI_FRP_documentdesc.pdf

  • Type
    (Inferred hot spot type)
    0 = presumed vegetation fire

1 = active volcano

2 = other static land source

3 = offshore detection (includes all detections over water)

  • DayNight
    (Day or Night)

D= Daytime fire

N= Nighttime fire

Tables

Modis 2019 France

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_france
  • 77.33 KB
  • 2901 rows
  • 15 columns
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CREATE TABLE modis_2019_france (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 French Guiana

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_french_guiana
  • 19.69 KB
  • 260 rows
  • 15 columns
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CREATE TABLE modis_2019_french_guiana (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 French Polynesia

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_french_polynesia
  • 11.46 KB
  • 26 rows
  • 15 columns
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CREATE TABLE modis_2019_french_polynesia (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Gabon

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_gabon
  • 67.25 KB
  • 2321 rows
  • 15 columns
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CREATE TABLE modis_2019_gabon (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Georgia

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_georgia
  • 32.36 KB
  • 680 rows
  • 15 columns
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CREATE TABLE modis_2019_georgia (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Germany

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_germany
  • 70.09 KB
  • 2781 rows
  • 15 columns
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CREATE TABLE modis_2019_germany (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Ghana

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_ghana
  • 755.65 KB
  • 45923 rows
  • 15 columns
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CREATE TABLE modis_2019_ghana (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Greece

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_greece
  • 41.29 KB
  • 1034 rows
  • 15 columns
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CREATE TABLE modis_2019_greece (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Greenland

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_greenland
  • 15 KB
  • 117 rows
  • 15 columns
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CREATE TABLE modis_2019_greenland (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Grenada

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_grenada
  • 10.18 KB
  • 1 row
  • 15 columns
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CREATE TABLE modis_2019_grenada (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" BIGINT,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Guadeloupe

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_guadeloupe
  • 10.46 KB
  • 5 rows
  • 15 columns
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CREATE TABLE modis_2019_guadeloupe (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Guam

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_guam
  • 11.23 KB
  • 20 rows
  • 15 columns
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CREATE TABLE modis_2019_guam (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Guatemala

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_guatemala
  • 192.86 KB
  • 9318 rows
  • 15 columns
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CREATE TABLE modis_2019_guatemala (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Guernsey

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_guernsey
  • 10.18 KB
  • 1 row
  • 15 columns
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CREATE TABLE modis_2019_guernsey (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" BIGINT,
  "track" BIGINT,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" BIGINT,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Guinea

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_guinea
  • 1.2 MB
  • 73791 rows
  • 15 columns
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CREATE TABLE modis_2019_guinea (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Guinea Bissau

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_guinea_bissau
  • 111.63 KB
  • 4843 rows
  • 15 columns
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CREATE TABLE modis_2019_guinea_bissau (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Guyana

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_guyana
  • 61.33 KB
  • 2095 rows
  • 15 columns
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CREATE TABLE modis_2019_guyana (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Haiti

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_haiti
  • 20.4 KB
  • 272 rows
  • 15 columns
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CREATE TABLE modis_2019_haiti (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Honduras

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_honduras
  • 210.38 KB
  • 10230 rows
  • 15 columns
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CREATE TABLE modis_2019_honduras (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Hong Kong

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_hong_kong
  • 10.8 KB
  • 11 rows
  • 15 columns
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CREATE TABLE modis_2019_hong_kong (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Hungary

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_hungary
  • 28.55 KB
  • 577 rows
  • 15 columns
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CREATE TABLE modis_2019_hungary (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 India

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_india
  • 1.44 MB
  • 75502 rows
  • 15 columns
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CREATE TABLE modis_2019_india (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Indonesia

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_indonesia
  • 1.62 MB
  • 90475 rows
  • 15 columns
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CREATE TABLE modis_2019_indonesia (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Iran

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_iran
  • 415.63 KB
  • 23320 rows
  • 15 columns
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CREATE TABLE modis_2019_iran (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

Modis 2019 Iraq

@kaggle.brsdincer_investigative_wildfire_data_for_turkey_nasa.modis_2019_iraq
  • 699.99 KB
  • 51483 rows
  • 15 columns
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CREATE TABLE modis_2019_iraq (
  "latitude" DOUBLE,
  "longitude" DOUBLE,
  "brightness" DOUBLE,
  "scan" DOUBLE,
  "track" DOUBLE,
  "acq_date" TIMESTAMP,
  "acq_time" BIGINT,
  "satellite" VARCHAR,
  "instrument" VARCHAR,
  "confidence" BIGINT,
  "version" DOUBLE,
  "bright_t31" DOUBLE,
  "frp" DOUBLE,
  "daynight" VARCHAR,
  "type" BIGINT
);

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