big data from space - module big data isae 2017
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Big Data from SpaceLe Big Data et les satellites d’Observation de la Terre
Jérôme GASPERI
Brett Ryder - http://www.economist.com/node/15579717
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OCEANOuverture - Libéral & artistique vs conservateur Conscienciosité - organisation vs spontanéité Extraversion - émotions positives vs timide et réservé Agréabilité - coopératif vs compétitif Neuroticisme - émotions désagréables vs calme et relax
1 m i l l i a rd d e m i l l i a rd d ’ o p é r a t i o n s p a r s e c o n d e e n 2 0 2 4
1,000,000,000,000,000,000
9%Part de la consommation française d’électricité due au data centers
http://www.latribune.fr/entreprises-finance/industrie/energie-environnement/efficacite-energetique-les-data-centers-encore-defaillants-619895.html
36 37 36
Your Online World: Green IRL, or #dirty?
While the companies assessed in this report own
or operate their own data centers, most companies
either rent server space in colocation facilities, host
their operations with cloud computing vendors and
content delivery networks, and many employ some
combination of these options.
Outside of the colocation companies, no company could
do more to make our favorite sites green than Amazon Web Services. AWS is the dominant player in cloud computing, owning over one fourth of the market by one
estimate, over triple the market share of Microsoft, its
nearest competitor.105 AWS customers should push the company to become more transparent about its energy
footprint, and to make clear what strategies and principles
it is using to reach its 100% renewable energy goal,
particularly in its dirtiest regions, like Virginia.
While these customers may not operate the mega data
centers that Google, Amazon and Microsoft do, their role in building a greener internet is just as important.
Data center operators and cloud computing vendors will
prioritize powering with renewable energy only when their
customers demand it, and those customers need to step
up to the challenge.
The graphic on this page offers a sampling of where some
of the internet’s most popular sites and services are being
hosted – and the relative greenness of the energy that
those data centers are using. Energy demand symbols
are not drawn to scale and are meant to offer a relative
indication.
AmazonWeb
Services
DigitalRealty
DupontFabros
Ebay
FacebookOracle
HP
Yahoo
IBM
Microsoft
Apple
Salesforce
Rackspace
Equinix
Telecity
http://www.greenpeace.org/usa/clickclean/#report
2014
Doter l'Europe d'une capacité opérationnelle et autonome d'observation de la Terre en tant que « services d’intérêt général européen, à accès libre, plein et entier »
Le programme Copernicus
Coordination technique
Missions Sentinels
Missions Contributrices
Atmosphère
Climat
Marine
Sécurité
Terre
Urgences
Coordination
Etats membres
ESPACE SERVICES IN SITU
Plateformes d’accès
Applications avals
Coordination technique
Missions Sentinels
Missions Contributrices
Atmosphère
Climat
Marine
Sécurité
Terre
Urgences
Coordination
Etats membres
ESPACE SERVICES IN SITU
Plateformes d’accès
Applications avals
0.9 Mds €3.4 Mds €
Sentinel-1RADAR
S1A - April 2014 S1B mid 2016
Sentinel-2OPTICAL
S2A - June 2015 S2B mid 2016
Sentinel-3ALTIMETER / SEA SURFACE
S3A - Summer 2015 S3B mid 2016
Sentinel-4ATMOSPHERE
2018
Sentinel-5PATMOSPHERE
End 2015Sentinel-5ATMOSPHERE
2020
Sentinel-6ALTIMETER
2020
SentinelLe volet spatial du programme
Copernicus
Sentinel-1RADAR
S1A - April 2014 S1B mid 2015
Sentinel-2OPTICAL
S2A - June 2015 S2B mid 2016
Sentinel-3ALTIMETER / SEA SURFACE
S3A - Summer 2015 S3B mid 2016
PEPSPlateforme d’Exploitation des Produits Sentinel
2015-2017Phase 1
Sentinel 1Radar en bande C
Surveillance maritime, Géophysique, Glaciologie, etc.
Orbite Héliosynchrone Altitude 693 km
Observation Optique, Evolutions des sols, Agriculture, Cartographie, etc.
Orbite Héliosynchrone Altitude 786 km
Sentinel 2
Sentinel 3Hauteurs des océans, Couleur et température de surface
Orbite Héliosynchrone Altitude 814 km
Bull HPSS
2 PO
7 PO
Disques durs
Stockage Bandes
Migration automatique
Récupération « transparente »
Montage NFS
CNES data center - Toulouse, France
ex. Dans le cadre d’une étude d’impact sur l’augmentation du niveau des océans, je cherche des images sans nuage de villes côtières situées en Asie
:) :)
:(
Sven Sachsalber | http://www.palaisdetokyo.com/fr/events/sven-sachsalber
Sven Sachsalber | http://www.palaisdetokyo.com/fr/events/sven-sachsalber
17 hours 45 minutes
Orfeo Toolbox Remote sensing image library Open Source Developed by the French Space Agency
Exemple 1
Orfeo Toolbox More than 70 high level processing chains orthorectification segmentation classification etc.
Orfeo Toolbox More than 70 high level processing chains orthorectification segmentation classification etc.
Supervised learning
(land cover is computed from a set of "well known areas" given by user)
Based on SVM (http://en.wikipedia.org/wiki/Support_vector_machine)
http://techcrunch.com/2014/08/15/google-buys-jetpac-to-give-context-to-visual-searches/
+ =Deep learning
Deep learning !!!!Plutôt adapté à l’extraction d’objets (ex. aéroport, route, tank, etc.) Quelle base de référence d’images ?
Emprise de l’image
Bords de côtes
Toponymes(Continents, Pays, Régions, Etats)
Densité de population
Occupation du sol
…etc…
Couches d’informationsgithub.com/jjrom/itag
iTag
[…etc…] { "name":"Europe", "id":"continent:europe",
"countries":[ {
"name":"Italy", "id":"country:italy", "pcover":37.02,
"regions":[ {
"name":"Valle d'Aosta", "id":"region:valle-d-aosta",
"states":[ {
"name":"Aoste", "id":"state:aoste",
"pcover":37.02, "toponyms":[] } ] } ] }, […etc…]
Temps de traitement < 1 seconde
California
Coastal
town
spring
without clouds
github.com/jjrom/restoresto
Brett Ryder - http://www.economist.com/node/15579717
Extraire l’information
Extraire l’information« We create as much information in two days nowas we did from the dawn of man through 2003 »
Eric Schmidt
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