Last modified by Sabrina V. on 2026/10/07 08:13

From version 4.1
edited by Sabrina V.
on 2026/07/28 08:23
Change comment: There is no comment for this version
To version 5.1
edited by Sabrina V.
on 2026/10/07 08:13
Change comment: There is no comment for this version

Summary

Details

Page properties
Content
... ... @@ -6,18 +6,18 @@
6 6  A Wipe Boot Template is used, for example, to securely reset devices before reuse, return, or disposal and to reliably remove old data. Automated execution ensures that the deletion process can be executed consistently on all devices without requiring manual steps.
7 7  
8 8  {{aagon.versionierungsbox}}
9 -Starting with ACMP version 6.10, you can choose wipe methods to determine how data should be deleted and create an interactive wipe boot template.
9 +Starting with acmp version 6.10, you can choose wipe methods to determine how data should be deleted and create an interactive wipe boot template.
10 10  {{/aagon.versionierungsbox}}
11 11  
12 12  To delete entire hard drives using a Wipe Boot Template, follow these steps:
13 13  
14 -~1. In ACMP, navigate to //OS Deployment > Boot Templates//.
14 +~1. In acmp, navigate to //OS Deployment > Boot Templates//.
15 15  
16 16  2. Choose the folder where the boot template should be created.
17 17  
18 18  3. Click the //Add// button on the ribbon bar and select the //Add Wipe Boot Template// option from the drop-down menu.
19 19  
20 -[[Add the Wipe Boot Template>>image:1779430057746-678.png]]
20 +[[Add the Wipe Boot Template>>image:1779430057746-678.png||data-cmp-info="10"]]
21 21  
22 22  4.A wizard will open where you can specify the output directory, the name of the new boot template, a description (if applicable), and the Boot Image itself, which will be used as the environment for the wipe process.
23 23  You can also choose whether the wipe should be performed as an interactive boot template.
... ... @@ -26,13 +26,13 @@
26 26  An interactive boot template is used to boot Clients into a boot environment via a physical boot medium, rather than booting over the network (PXE). The boot medium contains a Boot Image, which is provided, for example, on a USB drive or as an ISO file. Unlike an automated or wipe boot template, the actions after startup are not executed in a full manner. Instead, administrators can interactively select and confirm which steps should be executed during the boot process, such as starting deployments.
27 27  {{/aagon.infobox}}
28 28  
29 -[[Select the Boot Image>>image:Wipe Boot Template_610.png]]
29 +[[Select the Boot Image>>image:Wipe Boot Template_610.png||data-cmp-info="10"]]
30 30  
31 31  5. Click //Next//.
32 32  
33 33  6. On the next page, configure the template.
34 34  
35 -[[Specify the wipe methods>>image:Wipe Boot Template anlegen_Seite2.png]]
35 +[[Specify the wipe methods>>image:Wipe Boot Template anlegen_Seite2.png||data-cmp-info="10"]]
36 36  
37 37  Use the checkboxes to select whether you want to delete all drives or individual drives.
38 38  
... ... @@ -52,12 +52,12 @@
52 52  
53 53  This method is intended for traditional magnetic hard drives (HDDs). It involves selectively overwriting specific data areas of the disk to prevent data recovery.
54 54  
55 -The selected method is automatically applied in ACMP depending on the detected storage device type. This ensures that both SSDs and HDDs are deleted using an appropriate and secure method.
55 +The selected method is automatically applied in acmp depending on the detected storage device type. This ensures that both SSDs and HDDs are deleted using an appropriate and secure method.
56 56  
57 57  As a final option, you can decommission the client once the disk deletion has been successfully completed. If applicable, specify the reason for decommissioning.
58 58  
59 59  {{aagon.infobox}}
60 -A decommissioned Client is stored as a “Retired Client” in ACMP.
60 +A decommissioned Client is stored as a “Retired Client” in acmp.
61 61  {{/aagon.infobox}}
62 62  
63 63  {{aagon.infobox}}
... ... @@ -96,7 +96,7 @@
96 96  
97 97  Different wipe methods are used depending on the storage medium. Some methods overwrite data multiple times, while others utilize special functions of modern SSDs. The goal is to prevent data recovery—even with specialized software—as much as possible.
98 98  
99 -The choice of wipe method determines how data is deleted from the respective storage medium. Since SSDs behave technically differently than traditional hard drives (HDDs), ACMP offers different erasure methods:
99 +The choice of wipe method determines how data is deleted from the respective storage medium. Since SSDs behave technically differently than traditional hard drives (HDDs), acmp offers different erasure methods:
100 100  
101 101  **SSD**
102 102  
... ... @@ -112,9 +112,9 @@
112 112  
113 113  This method is intended for traditional magnetic hard drives (HDDs). It involves selectively overwriting specific data areas of the hard drive to prevent data recovery.
114 114  
115 -ACMP automatically selects the appropriate wipe method based on the detected storage device type. This ensures that both SSDs and HDDs are deleted using a suitable and secure method.
115 +acmp automatically selects the appropriate wipe method based on the detected storage device type. This ensures that both SSDs and HDDs are deleted using a suitable and secure method.
116 116  
117 -The following table provides an overview of the standards supported by ACMP for the delete process:
117 +The following table provides an overview of the standards supported by acmp for the delete process:
118 118  
119 119  {{aagon.infobox}}
120 120  All items under the SSD option with more than 7 passes have already been filtered out. However, the items under HDD may include options with more than 7 wipe passes.
... ... @@ -129,8 +129,8 @@
129 129  1. Overwrite with a random character
130 130  
131 131  After that, “verification should take place”
132 -)))|(% style="width:209px" %)[[image:forbidden.svg||alt="(Minus)"]]
133 -|AR_380_19|US Army AR 380-19|(% style="width:119px" %)3|[[image:https://extranet.aagon.com/s/24ys4x/9012/1ca6q62/_/images/icons/emoticons/check.svg||alt="(Haken)"]]|(% style="width:209px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
132 +)))|(% style="width:209px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10"]]
133 +|AR_380_19|US Army AR 380-19|(% style="width:119px" %)3|[[image:https://extranet.aagon.com/s/24ys4x/9012/1ca6q62/_/images/icons/emoticons/check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:209px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
134 134  |CSEC_ITSG_06|Canadian CSEC ITSG-06|(% style="width:119px" %)3|(% style="width:616px" %)(((
135 135  * CSEC= Communication Security Establishment Canada
136 136  * 3-Fach-Wipe
... ... @@ -139,7 +139,7 @@
139 139  *1. Überschreiben mit random Bitmuster
140 140  * Letzter Durchgang wird verifiziert
141 141  * sehr ähnlich zu DOD_5220_22_M
142 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
142 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
143 143  |DOD_5200_28_STD|US DoD 5200.28-STD|(% style="width:119px" %)7|(% style="width:616px" %)(((
144 144  * DoD steht für Department of Defense, dem US-Verteidigungsministerium
145 145  * 1985
... ... @@ -151,7 +151,7 @@
151 151  *1. Überschreiben mit 0x55
152 152  *1. Überschreiben mit 0xAA
153 153  *1. Überschreiben mit random Character
154 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
154 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
155 155  |DOD_5220_22_M|US DoD 5220.22-M|(% style="width:119px" %)3|(% style="width:616px" %)(((
156 156  * DoD steht für Department of Defense, dem US-Verteidigungsministerium
157 157  * 1995
... ... @@ -160,7 +160,7 @@
160 160  *1. Überschreiben Komplement zu 1., z.B. 0xFF
161 161  *1. Überschreiben mit "cryptographically secure pseudo-random sequence"
162 162  * Verifikation von allen Durchgängen
163 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
163 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
164 164  |DOD_5220_22_M_E|US DoD 5220.22-M (E)|(% style="width:119px" %)3|(% style="width:616px" %)(((
165 165  * DoD steht für Department of Defense, dem US-Verteidigungsministerium
166 166  * 3-Fach-Wipe
... ... @@ -167,7 +167,7 @@
167 167  *1. Überschreiben mit 0xF1
168 168  *1. Überschreiben mit Komplement von 1 (0x0E)
169 169  *1. Überschreiben mit random Character
170 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
170 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
171 171  |DOD_5220_22_M_ECE|US DoD 5220.22-M (ECE)|(% style="width:119px" %)7|(% style="width:616px" %)(((
172 172  * DoD steht für Department of Defense, dem US-Verteidigungsministerium
173 173  * 2001
... ... @@ -178,18 +178,18 @@
178 178  4. Überschreiben mit random Character
179 179  
180 180  5. bis 7. DOD_5220_22_M_E
181 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
182 -|GOST_R_50739_95_1|Russian GOST R 50739-95 (1 pass)|(% style="width:119px" %)1|(% style="width:616px" %)Überschreiben mit random Byte|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
181 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
182 +|GOST_R_50739_95_1|Russian GOST R 50739-95 (1 pass)|(% style="width:119px" %)1|(% style="width:616px" %)Überschreiben mit random Byte|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
183 183  |GOST_R_50739_95_2|Russian GOST R 50739-95 (2 passes)|(% style="width:119px" %)2|(% style="width:616px" %)(((
184 184  * 2-Fach-Wipe
185 185  *1. Überschreiben mit 0x00
186 186  *1. Überschreiben mit random Byte
187 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
187 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
188 188  |HMG_IS5_B|British HMG IS5 (Baseline)|(% style="width:119px" %)2|(% style="width:616px" %)(((
189 189  *
190 190  *1. Überschreiben mit 0x00
191 191  *1. Überschreiben mit pseudo random Bitmuster
192 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
192 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
193 193  |HMG_IS5_E|British HMG IS5 (Enhanced)|(% style="width:119px" %)3|(% style="width:616px" %)(((
194 194  *
195 195  *1. Überschreiben mit 0x00
... ... @@ -196,11 +196,11 @@
196 196  *1. Überschreiben mit 0xFF
197 197  *1. Überschreiben mit "cryptographically secure pseudo-random sequence"
198 198  * Verifikation aller Durchgänge
199 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
199 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
200 200  |ISM_6_2_92|Australian ISM 6.2.92|(% style="width:119px" %)1|(% style="width:616px" %)(((
201 201  * australisch
202 202  * Überschreiben mt random Bitmuster
203 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
203 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
204 204  |NAVSO_P_5239_26_MFM|US Navy NAVSO P-5239-26 (MFM)|(% style="width:119px" %)3|(% style="width:616px" %)(((
205 205  * 3-Fach-Wipe
206 206  *1. Überschreiben 0x01
... ... @@ -207,7 +207,7 @@
207 207  *1. Überschreiben mit 0x7FFFFFFF (32-Bit mit führender 0, dann nur noch 1)
208 208  *1. Überschreiben mit unterschiedlichen random Bitmuster
209 209  * Verifikation
210 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
210 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
211 211  |NAVSO_P_5239_26_RLL|US Navy NAVSO P-5239-26 (RLL)|(% style="width:119px" %)3|(% style="width:616px" %)(((
212 212  * 3-Fach-Wipe
213 213  *1. Überschreiben mit 0x01
... ... @@ -214,7 +214,7 @@
214 214  *1. Überschreiben mit 0x27FFFFFF
215 215  *1. Überschreiben mit unterschiedlichen random Bitmustern
216 216  * Verifikation
217 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
217 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
218 218  |NCSC_TG_025|US NCSC-TG-025|(% style="width:119px" %)3|(% style="width:616px" %)(((
219 219  * 3-Fach-Wipe
220 220  *1. Überschreiben mit 0x00
... ... @@ -221,15 +221,15 @@
221 221  *1. Überschreiben mit 0xFF
222 222  *1. Überschreiben mit random Character
223 223  * Verifikation nach jedem Schritt
224 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
224 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
225 225  |NIST_800_88_1R|NIST 800-88 (1 pass random)|(% style="width:119px" %)1|(% style="width:616px" %)(((
226 226  * NIST steht für National Institute of Standard
227 227  * Überschreibt alle adressierbaren Speicherplätze einmal mit zufälligen Bitmustern
228 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
228 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
229 229  |NIST_800_88_1Z|NIST 800-88 (1 pass zeros)|(% style="width:119px" %)1|(% style="width:616px" %)(((
230 230  * NIST steht für National Institute of Standard
231 231  * Überschreibt alle adressierbaren Speicherplätze mit Nullen
232 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
232 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
233 233  |NIST_800_88_3|(((
234 234  NIST 800-88 (3 passes)
235 235  
... ... @@ -241,7 +241,7 @@
241 241  *1. Überschreiben mit 0xFF
242 242  *1. Überschreiben mit pseudo-random String
243 243  * am Ende verifizieren
244 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
244 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
245 245  |NSA_130_1|US NSA 130-1|(% style="width:119px" %)3|(% style="width:616px" %)(((
246 246  3-Fach-Wipe
247 247  
... ... @@ -248,19 +248,19 @@
248 248  1.und 2. Überschreiben mit random Wert
249 249  
250 250  3. Überschreiben mit 0xAA
251 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
251 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
252 252  |NZSIT_402|New Zealand NZSIT 402|(% style="width:119px" %)1|(% style="width:616px" %)(((
253 253  * Überschreibt jeden Sektor mit einem random Byte
254 254  * danach wird verifiziert
255 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
255 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
256 256  |PFITZNER_7|Pfitzner 7-pass|(% style="width:119px" %)7|(% style="width:616px" %)(((
257 257  * Roy-Pfitzner-Methode
258 258  * 7-Fach-Wipe mit random Byte
259 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
259 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
260 260  |PFITZNER_33|Pfitzner 33-pass|(% style="width:119px" %)33|(% style="width:616px" %)(((
261 261  * Roy-Pfitzner-Methode
262 262  * 33-Fach-Wipe mit random Bitmustern
263 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
263 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
264 264  |RCMP_TSSIT_OPS_II|Canadian RCMP TSSIT OPS-II|(% style="width:119px" %)7|(% style="width:616px" %)(((
265 265  * Royal Canadian Mounted Police: Technical Security Standards for Information Technology
266 266  * 7-Fach-Wipe, oft wie folgt implementiert
... ... @@ -271,7 +271,7 @@
271 271  *1. Überschreiben mit 0x00
272 272  *1. Überschreiben mit 0xFF
273 273  *1. Überschreiben mit random Bitmuster
274 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
274 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
275 275  |SCHNEIER|Bruce Schneier|(% style="width:119px" %)7|(% style="width:616px" %)(((
276 276  * Bruce-Schneider-Methode
277 277  * 7-Fach-Wipe:
... ... @@ -278,7 +278,7 @@
278 278  *1. Überschreiben mit 0x00
279 279  *1. Überschreiben mit Komplement von 1 (also 0xFF)
280 280  *1. - 7. Überschreibe alle adressierbaren Speicherplätze mit pseudo-random Bitmustern
281 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
281 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
282 282  |VSITR|German VSITR|(% style="width:119px" %)7|(% style="width:616px" %)(((
283 283  * deutscher Standard; (VS=Verschlusssachen; IT=Informationstechnik; R=Richtlinie)
284 284  * 1998 bis 2009, inzwischen abgelöst
... ... @@ -285,21 +285,21 @@
285 285  * Richtlinien zum Geheimschutz von Verschlusssachen beim Einsatz von Informationstechnik
286 286  * 7-Fach-Wipe mit festen Mustern: 0x00, 0xFF abwechselnd und am Ende 0xAA (Wikipedia)
287 287  * "7 sequental passes, consistently filling it with the specific patterns"
288 -)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]
288 +)))|(% style="width:209px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]|(% style="width:212px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]
289 289  |SSD_SANITIZE|SSD Sanitize|(% style="width:119px" %)n.A.|(% style="width:616px" %)(((
290 290  * Sanitize, säubern
291 291  * Nur für NVMe
292 292  * Factory Reset und löschen der Daten
293 293  * Nicht von allen SSDs unterstützt
294 -)))|(% style="width:209px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]|(% style="width:212px" %)[[image:check.svg||alt="(Haken)"]]
295 -|Sanitize + Crypto| |(% style="width:119px" %) |(% style="width:616px" %) |(% style="width:209px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]|(% style="width:212px" %)[[image:check.svg||alt="(Haken)"]]
294 +)))|(% style="width:209px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]|(% style="width:212px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]
295 +|Sanitize + Crypto| |(% style="width:119px" %) |(% style="width:616px" %) |(% style="width:209px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]|(% style="width:212px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]
296 296  |SSD_SE| |(% style="width:119px" %)n.A.|(% style="width:616px" %)(((
297 297  * Secure Erase, schnelles Löschen
298 298  * Factory Reset
299 299  * zurücksetzen aller Flash-Zellen auf Zustand "1": unprogrammiert
300 300  * kein Löschen/Überschreiben nur die Zuordnungstabelle leeren
301 -)))|(% style="width:209px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]|(% style="width:212px" %)[[image:check.svg||alt="(Haken)"]]
302 -|Secure Erase + Crypto| |(% style="width:119px" %) |(% style="width:616px" %) |(% style="width:209px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]|(% style="width:212px" %)[[image:check.svg||alt="(Haken)"]]
303 -|TRIM|SSD Trim|(% style="width:119px" %)n.A.|(% style="width:616px" %)"SSD Trim is a hardware command to safely wipe solid state drives. It’s universal and can be applied to almost all SSD drives SATA/NVMe."|(% style="width:209px" %)[[image:forbidden.svg||alt="(Minus)" height="16" width="16"]]|(% style="width:212px" %)[[image:check.svg||alt="(Haken)"]]
301 +)))|(% style="width:209px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]|(% style="width:212px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]
302 +|Secure Erase + Crypto| |(% style="width:119px" %) |(% style="width:616px" %) |(% style="width:209px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]|(% style="width:212px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]
303 +|TRIM|SSD Trim|(% style="width:119px" %)n.A.|(% style="width:616px" %)"SSD Trim is a hardware command to safely wipe solid state drives. It’s universal and can be applied to almost all SSD drives SATA/NVMe."|(% style="width:209px" %)[[image:forbidden.svg||alt="(Minus)" data-cmp-info="10" height="16" width="16"]]|(% style="width:212px" %)[[image:check.svg||alt="(Haken)" data-cmp-info="10"]]
304 304  
305 305  
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